script for convert .t3pa files to .t3pa_cls
.t3pa file example:
Index $\quad$ Matrix $\quad$ Index $\quad$ ToA $\quad$ ToT $\quad$ FToA $\quad$ Overflow
0 $\quad$ 4574 $\quad$ 832 $\quad$ 29 $\quad$ 6 $\quad$ 0
1 $\quad$ 4831 $\quad$ 832 $\quad$ 35 $\quad$ 7 $\quad$ 0
2 $\quad$ 4575 $\quad$ 832 $\quad$ 100 $\quad$ 8 $\quad$ 0
3 $\quad$ 31031 $\quad$ 1745 $\quad$ 22 $\quad$ 11 $\quad$ 0
.
.
.
.t3pa_cls file example:
% Index $\quad$ Matrix Index $\quad$ [ RowNo, ClmNo ] $\quad$ ToA $\quad$ FToA $\quad$ ( ToA_in_ns ) $\quad$ ToT ( ToT_in_keV ) $\quad$ Overflow
# 1, $\quad$ Nunmasked = 3, $\quad$ Nmasked = 0, $\quad$ Ntot = 3 # Tfirst = 2.0787500000000000e+04 ns, $\quad$ Tlast = 2.0790625000000000e+04 ns, $\quad$ dT = 3.125000 ns, $\quad$ Etot = 64.428148 keV
2 $\quad$ 4575 $\quad$ [ 17, 223 ] $\quad$ 832 $\quad$ 8 $\quad$ ( 2.0787500000000000e+04 ns ) $\quad$ 100 $\quad$ ( 37.867914 keV ) $\quad$ 0
1 $\quad$ 4831 $\quad$ [ 18, 223 ] $\quad$ 832 $\quad$ 7 $\quad$ ( 2.0789062500000000e+04 ns ) $\quad$ 35 $\quad$ ( 14.733453 keV ) $\quad$ 0
0 $\quad$ 4574 $\quad$ [ 17, 222 ] $\quad$ 832 $\quad$ 6 $\quad$ ( 2.0790625000000000e+04 ns ) $\quad$ 29 $\quad$ ( 11.826781 keV ) $\quad$ 0
# 2, $\quad$ Nunmasked = 3, $\quad$ Nmasked = 0, $\quad$ Ntot = 3 # Tfirst = 4.3601562500000000e+04 ns, $\quad$ Tlast = 4.3607812500000000e+04 ns, $\quad$ dT = 6.250000 ns, $\quad$ Etot = 63.577435 keV
5 $\quad$ 30775 $\quad$ [ 120, 55 ] $\quad$ 1745 $\quad$ 15 $\quad$ ( 4.3601562500000000e+04 ns ) $\quad$ 99 $\quad$ ( 37.617059 keV ) $\quad$ 0
4 $\quad$ 30776 $\quad$ [ 120, 56 ] $\quad$ 1745 $\quad$ 13 $\quad$ ( 4.3604687500000000e+04 ns ) $\quad$ 44 $\quad$ ( 14.715446 keV ) $\quad$ 0
3 $\quad$ 31031 $\quad$ [ 121, 55 ] $\quad$ 1745 $\quad$ 11 $\quad$ ( 4.3607812500000000e+04 ns ) $\quad$2 2 $\quad$ ( 11.244929 keV ) $\quad$ 0
.
.
.
import numpy as np
import math
#import pandas as pd
import matplotlib.pyplot as plt
from urllib.error import HTTPError # recognise the error stemming from missing data
#import urllib
import urllib.request
t3pa2cls_XII - upravena fce energy(a, b, c, t, ToT, pocet_udalosti, RowNo, ClmNo) - nyni je se pocita i s pripadem "nan"
#Define an exception which will be raised if the data is missing and stop the notebook execution
class StopExecution(Exception):
def _render_traceback_(self):
pass
#shot_no = 36529 #test discharge for which the notebook will definitely work
shot_no = 44334
shot = shot_no
identifier='H03-W0051_shot_'+str(shot)+'_450V'
detector = 'H03-W0051'
ds = np.DataSource('/tmp') # temporary storage for downloaded files
scalars_URL = 'http://golem.fjfi.cvut.cz/shots/{shot_no}/Diagnostics/PlasmaDetection/Results/{name}'
def get_scalar(shot_no, name):
return float(ds.open(scalars_URL.format(shot_no=shot_no, name=name)).read())
t_plasma_start = get_scalar(shot_no, 't_plasma_start')
t_plasma_end = get_scalar(shot_no, 't_plasma_end')
is_plasma = get_scalar(shot_no, 'b_plasma')
def get_file(shot, identifier):
#Pick the discharge to analyse
URL = 'http://golem.fjfi.cvut.cz/shots/{shot}/Diagnostics/TimepixDetector/H03/{identifier}.t3pa'
url = URL.format(shot=shot, identifier=identifier)
try:
file_name_t3pa=url
with urllib.request.urlopen(file_name_t3pa) as ft3pa:
line = ft3pa.readline()
line = line.decode('utf‐8')
ft3pa.close
except HTTPError:
print('File not found at %s. Aborting notebook execution.' % url)
raise StopExecution
return file_name_t3pa
def get_file_calib(name_calib):
#Pick the discharge to analyse
URL = 'http://golem.fjfi.cvut.cz/shots/{shot}/Diagnostics/TimepixDetector/calib_matrix_H03/{name_calib}.txt'
url = URL.format(shot=shot, name_calib=name_calib)
#print(url)
try:
file_calib=url
with urllib.request.urlopen(file_calib) as calib:
line = calib.readline()
line = line.decode('utf‐8')
calib.close
except HTTPError:
print('File not found at %s. Aborting notebook execution.' % url)
raise StopExecution
return file_calib
def load_calib(file_calib):
with urllib.request.urlopen(file_calib) as fc:
calib=[] #vytvoreni 1D pole
for i in range(0,256): #tj. rozsah 0-255
temp = [] # docasne pole
for j in range(0,256):
temp.append(0) #naplneni docasneho pole 0
calib.append(temp) #naplneni pole a[] docasnym polem temp
for i in range(0,256): #nacteni calib matice do pole calib
line = fc.readline()
line = line.decode('utf‐8')
word=line.strip().split(' ')
for j in range(0,256):
calib[i][j]=float(word[j]) #i = radek, j = sloupec0
fc.close
return calib
def load_t3pa_file(file_t3pa):
index=[]
matrix_index=[]
ToA=[]
ToT=[]
FToA=[]
overflow=[]
pocet_udalosti = 0
with urllib.request.urlopen(file_t3pa) as ft3pa:
line = ft3pa.readline()
line = line.decode('utf‐8')
while True:
line = ft3pa.readline()
line = line.decode('utf‐8')
word=line.strip().split('\t') #v t3pa souboru je oddelovac \t
if line == '':
break
index.append(word[0])
matrix_index.append(word[1])
ToA.append(float(word[2]))
ToT.append(float(word[3]))
FToA.append(float(word[4]))
overflow.append(float(word[5]))
pocet_udalosti = pocet_udalosti + 1
ft3pa.close
return index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti
def noise(index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti): #tuto fci nemus9m explicitn2 volat - volam ji v fci load_t3pa
pocet=int(0) #pocet sumicich pixelu
konst=int(len(index)/1000)+1
noise_matrix_index=[]
for i in range(0,konst):
pom = [] # pomocne pole
k=0 #pomocna promenna - udava, kolik je v czklu ve skutecnosti udalosti - aby nebyla chyba 'list index out of range'
for j in range(0,1001):
if i*1000+j>=len(index):
break
pom.append(matrix_index[i*1000+j])
k=k+1
for m in range(0,k):
count=int(0) #pocet vvyskytu stejneho matrix index behem 1000 udalosti
index_=int(-1) #budu testovat, jestli pixel na ktery koukam je sumici (abych ho nezapocital 2x)
for p in range(0,pocet):
#index=int(p)
if pom[m]==noise_matrix_index[p]:
index_=p #pixel na ktery jsem uz koukal a byl sumici
break
if index_ >=0 and pom[m]==noise_matrix_index[index_]:
continue
for l in range(0,k):
if pom[m]==pom[l]:
count=count+1
####podminka na sumici pixely
if count>=50: #kdyz se pixel vyskytne behem tisice udalosti vicekrat nez toto cislo, je sumici
noise_matrix_index.append(pom[m])
#noise_matrix_index[pocet]=pom[i]
pocet=pocet+1
pom.clear()
pocet_udalosti=len(index)
for n in range (0,pocet_udalosti):
for o in range(0,len(noise_matrix_index)):
if n >=pocet_udalosti:
break
if(matrix_index[n]==noise_matrix_index[o]):
del matrix_index[n]
del index[n]
del ToA[n]
del ToT[n]
del FToA[n]
del overflow[n]
pocet_udalosti=pocet_udalosti-1
continue
return pocet_udalosti,index, matrix_index, ToA, ToT, FToA, overflow
def t3pa_data(pocet_udalosti,index, matrix_index, ToA, ToT, FToA, overflow):
#rovnou vyhodim sumici pixely
pocet_udalosti,index, matrix_index, ToA, ToT, FToA, overflow=noise(index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti)
RowNo=[]
ClmNo=[]
for i in range(0,len(matrix_index)):
RowNo.append(int(int(matrix_index[i]))//int(256))
ClmNo.append(int(int(matrix_index[i]))%int(256))
return index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti, RowNo, ClmNo
def hit_map(detector,hit_map_fig,RowNo,ClmNo):
plt.hist2d(RowNo,ClmNo,bins=(256,256),cmap='Blues')
cb=plt.colorbar()
cb.set_label('Counts in pixel')
plt.xlabel('x [pixel]')
plt.ylabel('y [pixel]')
plt.title(detector)
plt.savefig(hit_map_fig, dpi = 1000)
return
def energy(a, b, c, t, ToT, pocet_udalosti, RowNo, ClmNo):
E=[] #energy in keV
#for i in range (0,pocet_udalosti):
pom=0
for i in range (0,len(ToT)):
sqrt=float(0.0)
e1=float(0.0)
e2=float(0.0)
# promenna sqrt je vnitrek odmocniny
sqrt = (((float(b[RowNo[i]][ClmNo[i]])+float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]])-float(ToT[i])))*(((float(b[RowNo[i]][ClmNo[i]])+float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]])-float(ToT[i])))) + (float(4)*float(a[RowNo[i]][ClmNo[i]])*float(c[RowNo[i]][ClmNo[i]]))) #zmena oproti verzi VI
if float(sqrt)<float(0):
E.append(float(0))
else:
'''
V kalibracni matici a se obcas vyskytne 0 -> ve vypoctu energie
je tim padem deleni nulou -> energie diverguje. Jak to vyresit?
zatim polozim energii = 0 (kdyz a=0), pak se uvidi
nakonec udelam limitu vyrazu energie pro a->0 (L'hopital)
'''
if a[RowNo[i]][ClmNo[i]]==0:
e1=((float(t[RowNo[i]][ClmNo[i]]))/float(2)) + ((((float(b[RowNo[i]][ClmNo[i]])+float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]])-float(ToT[i]))*(float(t[RowNo[i]][ClmNo[i]]))) - 2*(float(c[RowNo[i]][ClmNo[i]])))/(float(2)*np.sqrt(float(sqrt))))
e2=((float(t[RowNo[i]][ClmNo[i]]))/float(2)) - ((((float(b[RowNo[i]][ClmNo[i]])+float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]])-float(ToT[i]))*(float(t[RowNo[i]][ClmNo[i]]))) - 2*(float(c[RowNo[i]][ClmNo[i]])))/(float(2)*np.sqrt(float(sqrt))))
else:
e1=((-(float(b[RowNo[i]][ClmNo[i]]) - (float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]]))-float(ToT[i])))+np.sqrt(float(sqrt)))/(float(2)*float(a[RowNo[i]][ClmNo[i]]))
e2=((-(float(b[RowNo[i]][ClmNo[i]]) - (float(a[RowNo[i]][ClmNo[i]])*float(t[RowNo[i]][ClmNo[i]]))-float(ToT[i])))-np.sqrt(float(sqrt)))/(float(2)*float(a[RowNo[i]][ClmNo[i]]))
if a[RowNo[i]][ClmNo[i]]<0:
e1=-1
e2=-1
if math.isnan(e1):
e1=-1
if math.isnan(e2):
e2=-1
if e1<0 and e2<0:
E.append(float(0))
if e1>=0 and e1>e2:
E.append(float(e1))
if e2>=0 and e2>e1:
E.append(float(e2))
if e1>=0 and e2==e1:
E.append(float(e1))
return E
def Time(ToA, FToA, pocet_udalosti, RowNo, ClmNo):
T=[] #time in ns
for i in range (0,pocet_udalosti):
Time=float(0.0)
Time=(float(ToA[i])-((float(FToA[i])/float(16))))*float(25)
T.append(float(Time))
return T
def remove_interactions_with_zero_energy(index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T):
i=0
treshold=5.015347
while i < len(T):
if E[i]<treshold: #E[i] < energy treshold
index.pop(i)
matrix_index.pop(i)
ToA.pop(i)
ToT.pop(i)
FToA.pop(i)
overflow.pop(i)
RowNo.pop(i)
ClmNo.pop(i)
E.pop(i)
T.pop(i)
continue
i=i+1
return index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T
def clustering_new(index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T):
dT=float(50)
indexCl, TCl,ECl, matrix_indexCl, ToACl,ToTCl,FToACl,RowNoCl,ClmNoCl,overflowCl=[],[],[],[],[],[],[],[],[],[]
StartLastElem=len(T)-1
indexCl.append(int(index[StartLastElem]))
TCl.append(float(T[StartLastElem]))
ECl.append(float(E[StartLastElem]))
matrix_indexCl.append(int(matrix_index[StartLastElem]))
RowNoCl.append(int(RowNo[StartLastElem]))
ClmNoCl.append(int(ClmNo[StartLastElem]))
ToACl.append(float(ToA[StartLastElem]))
ToTCl.append(float(ToT[StartLastElem]))
FToACl.append(float(FToA[StartLastElem]))
overflowCl.append(float(overflow[StartLastElem]))
del index[StartLastElem]
del T[StartLastElem]
del E[StartLastElem]
del matrix_index[StartLastElem]
del RowNo[StartLastElem]
del ClmNo[StartLastElem]
del ToA[StartLastElem]
del ToT[StartLastElem]
del FToA[StartLastElem]
del overflow[StartLastElem]
j=1
pom=float(TCl[0]+dT)
while(j >0):
if(len(T) == 0):
break
k=0
j=0
while (k<=(len(TCl)-1)):
i=len(T)-1
if(len(T) == 0):
break
pocet_sousedu=0 #pocet sousednich pixelu - mohou byt maximalne 4
delka=0
# verze X
count=0 #pomocna promanna, kterou urcuji, ze se ma nasledujici cyklus while projit jeste jednou, pokud je i = -1
while(float(T[i])<=(pom)):
delka=delka+1
if(((((int(RowNoCl[k]))==(int(RowNo[i])+1))or((int(RowNoCl[k]))==(int(RowNo[i])-1))) and ((int(ClmNoCl[k]))==(int(ClmNo[i])))) or (((int(RowNoCl[k]))==(int(RowNo[i]))) and (((int(ClmNoCl[k]))==(int(ClmNo[i])+1))or((int(ClmNoCl[k]))==(int(ClmNo[i])-1))))):
#beru jen pixely, které mají společnou jednu stranu.
#pixely, kter0 spolu sousedí přes roh neuvažuji
indexCl.append(int(index[i]))
TCl.append(float(T[i]))
ECl.append(float(E[i]))
matrix_indexCl.append(int(matrix_index[i]))
RowNoCl.append(int(RowNo[i]))
ClmNoCl.append(int(ClmNo[i]))
ToACl.append(float(ToA[i]))
ToTCl.append(float(ToT[i]))
FToACl.append(float(FToA[i]))
overflowCl.append(float(overflow[i]))
# Removes i-th Row
del index[i]
del T[i]
del E[i]
del matrix_index[i]
del RowNo[i]
del ClmNo[i]
del ToA[i]
del ToT[i]
del FToA[i]
del overflow[i]
j=j+1
i=len(T)-1
pocet_sousedu=pocet_sousedu+1
if(len(T) == 0):
break
if(pocet_sousedu==4):
break
continue
i=i-1
if(i==-1): # verze X
count=count+1
if(i<0 and len(T)>0): # verze X
i=0
if(count>1):
break
if(i>=len(T)):
break
k=k+1
if(len(TCl)>2):
indexCl, TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl = insertionSort(indexCl, TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl)
return T, indexCl,TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl
def insertionSort(indexCl, TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl):
# Function to do insertion sort
# Traverse through 1 to len(arr)
for i in range(1, len(TCl)):
key = TCl[i]
# Move elements of arr[0..i-1], that are
# greater than key, to one position ahead
# of their current position
#ostatni
key1 = indexCl[i]
key2 = ECl[i]
key3 = matrix_indexCl[i]
key4 = RowNoCl[i]
key5 = ClmNoCl[i]
key6 = ToACl[i]
key7 = ToTCl[i]
key8 = FToACl[i]
key9 = overflowCl[i]
j = i-1
while j >= 0 and key < TCl[j] :
TCl[j + 1] = TCl[j]
#ostatni
indexCl[j + 1] = indexCl[j]
ECl[j + 1] = ECl[j]
matrix_indexCl[j + 1] = matrix_indexCl[j]
RowNoCl[j + 1] = RowNoCl[j]
ClmNoCl[j + 1] = ClmNoCl[j]
ToACl[j + 1] = ToACl[j]
ToTCl[j + 1] = ToTCl[j]
FToACl[j + 1] = FToACl[j]
overflowCl[j + 1] = overflowCl[j]
j -= 1
TCl[j + 1] = key
#ostatni
indexCl[j + 1] = key1
ECl[j + 1] = key2
matrix_indexCl[j + 1] = key3
RowNoCl[j + 1] =key4
ClmNoCl[j + 1] = key5
ToACl[j + 1] = key6
ToTCl[j + 1] = key7
FToACl[j + 1] = key8
overflowCl [j + 1] = key9
return indexCl, TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl
def file_t3pa_cls_new(file_t3pa_cls,T):
with open(file_t3pa_cls, "w", encoding="utf-8") as t3pa_cls:
t3pa_cls.write('%\n')
t3pa_cls.write('% Index Matrix Index [ RowNo, ClmNo ] ToA FToA ( ToA_in_ns ) ToT ( ToT_in_keV ) Overflow\n')
t3pa_cls.write('\n')
i=1
T_first=[]
E_tot=[]
while(len(T) > 0):
T, indexCl,TCl, ECl, matrix_indexCl, RowNoCl, ClmNoCl, ToACl, ToTCl, FToACl, overflowCl = clustering_new(index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T)
Tfirst=float(TCl[0])
Tlast=float(TCl[len(TCl)-1])
dT=Tlast-Tfirst
Etot=float(0)
for k in range(0,len(TCl)):
Etot=Etot+float(ECl[k])
T_first.append(float(Tfirst))
dT=Tlast-Tfirst
E_tot.append(float(Etot))
t3pa_cls.write('# '+str(i)+', Nunmasked = '+str(len(TCl))+', Nmasked = 0, Ntot = '+str(len(TCl))+'\n')
t3pa_cls.write('# Tfirst = '+str(Tfirst)+' ns, Tlast = '+str(Tlast)+' ns, dT = '+str(dT)+' ns, Etot = '+str(Etot)+' keV\n')
for j in range(0,len(TCl)):
t3pa_cls.write(str(indexCl[j])+' '+str(matrix_indexCl[j])+' [ '+str(RowNoCl[j])+', '+str(ClmNoCl[j])+' ] '+str(ToACl[j])+' '+str(FToACl[j])+' ( '+str(TCl[j])+' ns ) '+str(ToTCl[j])+' ( '+str(ECl[j])+' keV ) '+str(overflowCl[j])+'\n')
t3pa_cls.write('\n')
i=i+1
t3pa_cls.close
return T_first, E_tot
def energy_spectrum_in_time(Tfirst, Etot): #dela histogram - energie zaznamenana v case
pom = 0
dt=100 #(ns) time width of 1 bin
T_first=0 #cas, kdy prisel trigger a yacalo mereni
T_last=(max(Tfirst)) #posledni z Tfirst
Delta_T = T_last - T_first
poc = int(int(Delta_T) / float(dt)) + 1 #pocet casovych oken
T_int_first=[] #cas
E=[] #energie
for i in range(0,poc):
T_int_first.append((i*dt) + dt/2)
E.append(0)
#XII
for j in range(0,len(Tfirst)):
time_index=0
time_index=int(((Tfirst[j]-T_first)/dt))
if float(Tfirst[j]-T_first) >= (T_int_first[time_index] - dt / 2) and float(Tfirst[j]-T_first) < (T_int_first[time_index] + dt / 2):
E[time_index]=float(E[time_index])+float(Etot[j])
pom=pom+1
for l in range(0,len(T_int_first)):
T_int_first[l]=T_int_first[l]+T_first
caption, T_int_first = energy_in_time_hist(T_int_first, E, figure_E_in_time_hist, t_plasma_start, t_plasma_end, is_plasma, dt)
return dt, caption, T_int_first, E
def energy_in_time_hist(T_int_first, E,figure_E_in_time_hist, t_plasma_start, t_plasma_end, is_plasma, dt):
plt.rcParams.update({'font.size': 20})
fig, ax = plt.subplots(figsize =(10, 7))
for k in range(0,len(T_int_first)):
T_int_first[k] = T_int_first[k] / 1000000
plt.plot(T_int_first, E)
plt.title(detector+', #'+str(shot_no))
plt.xlabel('Time [ms]')
plt.ylabel('Energy [keV]')
if is_plasma == 1:
for t in (t_plasma_start, t_plasma_end):
plt.axvline(t, color='k', linestyle='--')
plt.xlim([0, (t_plasma_start + t_plasma_end)])
else:
plt.xlim(0,)
plt.ylim(0,) #10 000 keV
plt.savefig(figure_E_in_time_hist, dpi = 1000)
caption = '# x = time in ms, count = energy in keV, dT= '+str(dt)+' ns'
return caption, T_int_first
def hits_in_time_hist_new(T, dt, t_plasma_start, t_plasma_end, is_plasma,figure_count_in_time_hist):
pom = 0
T_first=0 #cas, kdy prisel trigger a yacalo mereni
T_last=(max(T)) #posledni z Tfirst
Delta_T = T_last - T_first
poc = int(int(Delta_T) / float(dt)) + 1 #pocet casovych oken
T_hit=[] #cas
count=[] #energie
for i in range(0,poc):
T_hit.append((i*dt) + dt/2)
count.append(0)
for j in range(0,len(T)):
time_index=0
time_index=int(((T[j]-T_first)/dt))
k=time_index
for j in range(0,len(T)):
time_index=0
time_index=int(((T[j]-T_first)/dt))
if float(T[j]-T_first) >= (T_hit[time_index] - dt / 2) and float(T[j]-T_first) < (T_hit[time_index] + dt / 2):
count[time_index] = count[time_index] + 1
pom=pom+1
for l in range(0,len(T_hit)):
T_hit[l]=T_hit[l]+T_first
plt.rcParams.update({'font.size': 20})
fig, ax = plt.subplots(figsize =(10, 7))
for k in range(0,len(T_hit)):
T_hit[k] = T_hit[k] / 1000000
plt.plot(T_hit, count)
plt.title(detector+', #'+str(shot_no))
plt.xlabel('Time [ms]')
plt.ylabel('Count')
if is_plasma == 1:
for t in (t_plasma_start, t_plasma_end):
plt.axvline(t, color='k', linestyle='--')
plt.xlim([0, (t_plasma_start + t_plasma_end)])
else:
plt.xlim(0,)
plt.ylim(0,) #10 000 keV
plt.savefig(figure_count_in_time_hist, dpi = 1000)
caption = '# x = time in ms, dT= '+str(dt)+' ns'
return caption, T_hit,count
def energy_spectrum(Etot):
E_min=0
dE=5 #keV
E_max=max(Etot)
pocet=(E_max//dE) + 3
pocet=int(pocet)
E_max=float(dE*pocet)
xle=[]
xre=[]
xmean=[]
for p in range (0,pocet):
xle.append(E_min + (p * (E_max - E_min)) / pocet)
xre.append(xle[p]+dE)
xmean.append((xle[p] + xre[p]) / 2)
count=[]
for l in range(0,pocet):
count.append(0)
#XII
for i in range(0,len(Etot)):
E_index=int(((Etot[i]-E_min)/dE))
if ((xle[E_index] <= Etot[i]) and (Etot[i] < xre[E_index])):
count[E_index]=count[E_index]+1
plt.rcParams.update({'font.size': 20})
fig, ax = plt.subplots(figsize =(10, 7))
ax.hist(Etot, bins = xle)
plt.title(detector+', #'+str(shot_no))
plt.xlabel('Energy [keV]')
plt.ylabel('Count')
plt.xlim(0,)
ax.set_yscale('log') #log scale y
caption = '# x = energy in keV, dE= '+str(dE)+' keV'
plt.savefig(figure_E_hist, dpi = 1000)
return caption, xmean,count, xle, Etot
def hist_file(file_hist, xmean, count, caption ):
with open(file_hist, "w", encoding="utf-8") as hist:
hist.write('#\n')
hist.write('#'+str(caption)+'\n')
hist.write('# x_mean count\n')
hist.write('\n')
for m in range(0,len(xmean)):
hist.write(str(xmean[m])+' '+str(count[m])+'\n')
hist.close
return T_first, E_tot
def multiplot(icon_fig, x1,y1,x2,y2):
plt.rcParams.update({'font.size': 20})
fig, ax = plt.subplots(nrows=2,figsize =(10, 7))
ax[0].plot(x1, y1)
ax[0].set_xlabel('Time [ms]')
ax[0].set_ylabel('Energy [keV]')
if is_plasma == 1:
for t in (t_plasma_start, t_plasma_end):
ax[0].axvline(t, color='k', linestyle='--')
ax[0].set_xlim([0, (t_plasma_start + t_plasma_end)])
else:
ax[0].set_xlim(0,)
ax[0].set_ylim(0,) #keV
ax[1].hist(y2, bins = x2)
ax[1].set_xlabel('Energy [keV]')
ax[1].set_ylabel('Count')
ax[1].set_xlim(0,)
#ax[1].set_ylim(0,)
ax[1].set_yscale('log') #log scale y
fig.subplots_adjust(hspace=0.3)
plt.savefig(icon_fig, dpi = 1000)
return
#soubory, ktere ctu
#read files
t3pa=get_file(shot, identifier)
name_calib='caliba'
caliba=get_file_calib(name_calib)
name_calib='calibb'
calibb=get_file_calib(name_calib)
name_calib='calibc'
calibc=get_file_calib(name_calib)
name_calib='calibt'
calibt=get_file_calib(name_calib)
#vytvorene soubory:
#created files
t3pa_cls='H03-W0051_shot_'+str(shot)+'_450V.t3pa_cls'
E_hist='H03-W0051_shot_'+str(shot)+'_450V_E_hist.txt'
E_in_time_hist='H03-W0051_shot_'+str(shot)+'_450V_discharge_energy.txt'
count_in_time_hist= 'H03-W0051_shot_'+str(shot)+'_450V_discharge_hits.txt'
#created figures
icon_fig='icon-fig'
figure_E_in_time_hist='discharge_energy'
figure_count_in_time_hist='discharge_hits'
figure_E_hist='Energy_spectrum'
hit_map_fig='hit-map'
#nactu jednotlive kalibracni matice - abych to nemusel delat v kazde funkci
a=load_calib(caliba)
b=load_calib(calibb)
c=load_calib(calibc)
t=load_calib(calibt)
#nactu a urcim jednotlive hodnoty - abych to nemusel delat v kazde funkci
index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti = load_t3pa_file(t3pa)
index, matrix_index, ToA, ToT, FToA, overflow, pocet_udalosti, RowNo, ClmNo = t3pa_data(pocet_udalosti,index, matrix_index, ToA, ToT, FToA, overflow)
raw data
#hit map
hit_map(detector,hit_map_fig,RowNo,ClmNo)
Energy and time calculation from raw data.
E=energy(a, b, c, t, ToT, pocet_udalosti, RowNo, ClmNo)
T=Time(ToA, FToA, pocet_udalosti, RowNo, ClmNo)
index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T = remove_interactions_with_zero_energy(index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E, T)
#sort by time
T, index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E = (list(t) for t in zip(*sorted(zip(T, index, matrix_index, ToA, ToT, FToA, overflow, RowNo, ClmNo, E), reverse=True))) #serazeni od nejvetsiho po nejmensi
T_pom=T.copy()
#save to file
T_first, E_tot = file_t3pa_cls_new(t3pa_cls,T)
dt, caption, T_int_first, E = energy_spectrum_in_time(T_first, E_tot)
hist_file(E_in_time_hist, T_int_first, E, caption);
([3544675.0, 3621470.3125, 3630876.5625, 3641195.3125, 3644942.1875, 3659268.75, 3678896.875, 3694057.8125, 3715517.1875, 3758198.4375, 5169262.5, 5321537.5, 5517818.75, 5552939.0625, 5603689.0625, 5631154.6875, 5634920.3125, 5714376.5625, 5728495.3125, 5770157.8125, 5787784.375, 5812142.1875, 5820067.1875, 5825223.4375, 5832682.8125, 5832701.5625, 5848867.1875, 5869342.1875, 5873450.0, 5885176.5625, 5885270.3125, 5890718.75, 5901062.5, 5901710.9375, 5908400.0, 5914909.375, 5927484.375, 5948735.9375, 5981801.5625, 5986975.0, 5989543.75, 5989703.125, 5997031.25, 5997040.625, 5998373.4375, 6005965.625, 6010271.875, 6023934.375, 6031875.0, 6037657.8125, 6039732.8125, 6039907.8125, 6043526.5625, 6048498.4375, 6052565.625, 6061873.4375, 6070725.0, 6076639.0625, 6095745.3125, 6097381.25, 6097628.125, 6104750.0, 6107357.8125, 6107996.875, 6109150.0, 6114273.4375, 6130432.8125, 6134353.125, 6143692.1875, 6143704.6875, 6169243.75, 6173612.5, 6173764.0625, 6174837.5, 6178754.6875, 6180159.375, 6186229.6875, 6242884.375, 6255098.4375, 6310873.4375, 6311543.75, 6318904.6875, 6320995.3125, 6330356.25, 6333112.5, 6343657.8125, 6378651.5625, 6381278.125, 6383582.8125, 6412401.5625, 6415842.1875, 6459267.1875, 6467395.3125, 6481164.0625, 6490506.25, 6493790.625, 6502773.4375, 6512564.0625, 6519839.0625, 6557235.9375, 6575253.125, 6587515.625, 6589900.0, 6612668.75, 6616107.8125, 6643256.25, 6645187.5, 6649670.3125, 6651068.75, 6655951.5625, 6656156.25, 6659534.375, 6660987.5, 6660990.625, 6674284.375, 6728289.0625, 6760932.8125, 6770703.125, 6775401.5625, 6782012.5, 6802731.25, 6817590.625, 6822240.625, 6825967.1875, 6859132.8125, 6875670.3125, 6875925.0, 6876429.6875, 6881178.125, 6892690.625, 6893903.125, 6894296.875, 6899840.625, 6923032.8125, 6923054.6875, 6928537.5, 6931159.375, 6932656.25, 6937885.9375, 6938792.1875, 6938885.9375, 6954395.3125, 6956707.8125, 6958215.625, 6970860.9375, 6972003.125, 6972990.625, 6986512.5, 6989215.625, 7003245.3125, 7004403.125, 7014714.0625, 7021767.1875, 7028535.9375, 7047664.0625, 7047779.6875, 7065946.875, 7076773.4375, 7098834.375, 7103165.625, 7143665.625, 7233932.8125, 7251701.5625, 7256354.6875, 7328571.875, 7334582.8125, 7459170.3125, 7481890.625, 7534562.5, 7687467.1875, 7716759.375, 7869054.6875, 8132498.4375, 8228043.75, 8258995.3125, 8458739.0625, 8527598.4375, 9088304.6875, 9100881.25, 388681570.3125, 494558289.0625], [13.56536421716399, 45.232427557356246, 75.2807732329058, 5.858052422167388, 44.50340510707359, 45.032802329314805, 8.355777512053523, 7.3818251857240345, 46.58623397196898, 34.68747471806966, 117.23995261631535, 15.464439955992587, 103.3483798699021, 56.23677532841027, 5.940511460928598, 91.34445368410418, 9.097911088505201, 21.071716224630745, 34.0039369536001, 79.2458716645222, 86.15022208692992, 51.42493613157704, 10.086976905865106, 10.375412785714985, 64.98288374031651, 19.305702172175796, 6.05886138328264, 6.725472974172542, 70.50142495596438, 30.121998331728772, 5.163191195647966, 20.35489793273481, 21.603133154346864, 76.30309653733107, 48.29568143636004, 31.889834066436094, 7.280665818839223, 8.357114424434176, 5.407086452340031, 24.343989680304624, 30.18191903556336, 5.625036873123596, 24.910559064619882, 15.724340796432548, 18.01797162436371, 71.7137511310576, 5.1457207830599, 29.020632743123336, 56.874815716709676, 9.08579586645211, 19.393990120333218, 11.478654630083689, 69.1028110823927, 16.81298756478418, 32.63559591074083, 50.558535469262765, 27.135855216181135, 20.679761122822832, 89.23780761120832, 38.854413416742375, 12.121692386063724, 38.337181908312346, 61.531639111732886, 77.4857934241864, 104.41685083585944, 19.409402761041502, 53.257849110245665, 10.798071908613668, 24.376291431007644, 8.464616392752559, 6.129628936468874, 52.26564115250794, 13.93615189634733, 83.62012270214206, 59.71863116016125, 15.634181378764717, 52.02612298251834, 30.75975056866877, 26.587571272621986, 7.972132965209076, 10.742761602517643, 54.616691375875, 68.89172004145158, 69.1701954085283, 38.24119031279529, 74.95561334242922, 129.54023477109556, 29.960612455812164, 9.934012875211298, 16.857532749634174, 11.211470616392148, 86.70198303323517, 37.54899760222148, 95.82047318135176, 38.875606606473895, 6.08048243299128, 17.83996234837558, 52.56022848499324, 28.85133666988162, 15.25183686628401, 15.573986807987657, 8.743515112455986, 26.21568519992784, 6.88838987972953, 24.254239728199753, 24.10512693364471, 77.10820438957039, 43.40022427148318, 96.8767965949523, 5.863914135241439, 56.03167299279379, 68.87777010292417, 6.645342338700876, 26.262114588541355, 20.641005953565116, 28.06719190762933, 9.931262042660203, 6.861294002111533, 55.94686184698004, 14.63272828907079, 22.02566207862227, 13.19063171813387, 11.354452494065114, 49.12320563029009, 14.417316337807492, 15.61939629885798, 5.453469953546395, 20.63262857030954, 7.307502798967465, 8.265364277044243, 136.81247092809198, 73.53931759944567, 20.818039765291992, 32.50010313948455, 9.045030420406665, 71.12967599161823, 42.397648737730826, 47.51121024525142, 35.11773373560489, 11.859555139394281, 48.5958385491437, 35.352991656685454, 37.25301407535078, 12.197531268532789, 35.56726577806896, 37.408320215808885, 11.628223215733497, 26.004031364074415, 11.164799309569727, 6.792828214112093, 7.3816510700326, 28.007877636210132, 18.98417600811173, 63.42924899266641, 135.91927639016504, 11.349614657762999, 5.74827550618119, 94.94711235211092, 14.064731888967495, 101.04173457592043, 16.84161533740889, 27.922739463488906, 23.679199148465027, 22.20551656102927, 11.425797706698843, 96.93763834433165, 78.77864105423998, 41.38850388389159, 46.52664587881094, 13.615887052797971, 17.695276803438354, 29.70397697111276, 77.47913065210187, 35.16981764840477, 12.876583153726784, 55.73383408250881, 9.041220437991665, 55.828605108541424, 5.987017975839202, 121.05902408964083, 23.23099667810619])
caption, xmean,count, xle, Etot = energy_spectrum(E_tot)
hist_file(E_hist, xmean, count, caption);
([3544675.0, 3621470.3125, 3630876.5625, 3641195.3125, 3644942.1875, 3659268.75, 3678896.875, 3694057.8125, 3715517.1875, 3758198.4375, 5169262.5, 5321537.5, 5517818.75, 5552939.0625, 5603689.0625, 5631154.6875, 5634920.3125, 5714376.5625, 5728495.3125, 5770157.8125, 5787784.375, 5812142.1875, 5820067.1875, 5825223.4375, 5832682.8125, 5832701.5625, 5848867.1875, 5869342.1875, 5873450.0, 5885176.5625, 5885270.3125, 5890718.75, 5901062.5, 5901710.9375, 5908400.0, 5914909.375, 5927484.375, 5948735.9375, 5981801.5625, 5986975.0, 5989543.75, 5989703.125, 5997031.25, 5997040.625, 5998373.4375, 6005965.625, 6010271.875, 6023934.375, 6031875.0, 6037657.8125, 6039732.8125, 6039907.8125, 6043526.5625, 6048498.4375, 6052565.625, 6061873.4375, 6070725.0, 6076639.0625, 6095745.3125, 6097381.25, 6097628.125, 6104750.0, 6107357.8125, 6107996.875, 6109150.0, 6114273.4375, 6130432.8125, 6134353.125, 6143692.1875, 6143704.6875, 6169243.75, 6173612.5, 6173764.0625, 6174837.5, 6178754.6875, 6180159.375, 6186229.6875, 6242884.375, 6255098.4375, 6310873.4375, 6311543.75, 6318904.6875, 6320995.3125, 6330356.25, 6333112.5, 6343657.8125, 6378651.5625, 6381278.125, 6383582.8125, 6412401.5625, 6415842.1875, 6459267.1875, 6467395.3125, 6481164.0625, 6490506.25, 6493790.625, 6502773.4375, 6512564.0625, 6519839.0625, 6557235.9375, 6575253.125, 6587515.625, 6589900.0, 6612668.75, 6616107.8125, 6643256.25, 6645187.5, 6649670.3125, 6651068.75, 6655951.5625, 6656156.25, 6659534.375, 6660987.5, 6660990.625, 6674284.375, 6728289.0625, 6760932.8125, 6770703.125, 6775401.5625, 6782012.5, 6802731.25, 6817590.625, 6822240.625, 6825967.1875, 6859132.8125, 6875670.3125, 6875925.0, 6876429.6875, 6881178.125, 6892690.625, 6893903.125, 6894296.875, 6899840.625, 6923032.8125, 6923054.6875, 6928537.5, 6931159.375, 6932656.25, 6937885.9375, 6938792.1875, 6938885.9375, 6954395.3125, 6956707.8125, 6958215.625, 6970860.9375, 6972003.125, 6972990.625, 6986512.5, 6989215.625, 7003245.3125, 7004403.125, 7014714.0625, 7021767.1875, 7028535.9375, 7047664.0625, 7047779.6875, 7065946.875, 7076773.4375, 7098834.375, 7103165.625, 7143665.625, 7233932.8125, 7251701.5625, 7256354.6875, 7328571.875, 7334582.8125, 7459170.3125, 7481890.625, 7534562.5, 7687467.1875, 7716759.375, 7869054.6875, 8132498.4375, 8228043.75, 8258995.3125, 8458739.0625, 8527598.4375, 9088304.6875, 9100881.25, 388681570.3125, 494558289.0625], [13.56536421716399, 45.232427557356246, 75.2807732329058, 5.858052422167388, 44.50340510707359, 45.032802329314805, 8.355777512053523, 7.3818251857240345, 46.58623397196898, 34.68747471806966, 117.23995261631535, 15.464439955992587, 103.3483798699021, 56.23677532841027, 5.940511460928598, 91.34445368410418, 9.097911088505201, 21.071716224630745, 34.0039369536001, 79.2458716645222, 86.15022208692992, 51.42493613157704, 10.086976905865106, 10.375412785714985, 64.98288374031651, 19.305702172175796, 6.05886138328264, 6.725472974172542, 70.50142495596438, 30.121998331728772, 5.163191195647966, 20.35489793273481, 21.603133154346864, 76.30309653733107, 48.29568143636004, 31.889834066436094, 7.280665818839223, 8.357114424434176, 5.407086452340031, 24.343989680304624, 30.18191903556336, 5.625036873123596, 24.910559064619882, 15.724340796432548, 18.01797162436371, 71.7137511310576, 5.1457207830599, 29.020632743123336, 56.874815716709676, 9.08579586645211, 19.393990120333218, 11.478654630083689, 69.1028110823927, 16.81298756478418, 32.63559591074083, 50.558535469262765, 27.135855216181135, 20.679761122822832, 89.23780761120832, 38.854413416742375, 12.121692386063724, 38.337181908312346, 61.531639111732886, 77.4857934241864, 104.41685083585944, 19.409402761041502, 53.257849110245665, 10.798071908613668, 24.376291431007644, 8.464616392752559, 6.129628936468874, 52.26564115250794, 13.93615189634733, 83.62012270214206, 59.71863116016125, 15.634181378764717, 52.02612298251834, 30.75975056866877, 26.587571272621986, 7.972132965209076, 10.742761602517643, 54.616691375875, 68.89172004145158, 69.1701954085283, 38.24119031279529, 74.95561334242922, 129.54023477109556, 29.960612455812164, 9.934012875211298, 16.857532749634174, 11.211470616392148, 86.70198303323517, 37.54899760222148, 95.82047318135176, 38.875606606473895, 6.08048243299128, 17.83996234837558, 52.56022848499324, 28.85133666988162, 15.25183686628401, 15.573986807987657, 8.743515112455986, 26.21568519992784, 6.88838987972953, 24.254239728199753, 24.10512693364471, 77.10820438957039, 43.40022427148318, 96.8767965949523, 5.863914135241439, 56.03167299279379, 68.87777010292417, 6.645342338700876, 26.262114588541355, 20.641005953565116, 28.06719190762933, 9.931262042660203, 6.861294002111533, 55.94686184698004, 14.63272828907079, 22.02566207862227, 13.19063171813387, 11.354452494065114, 49.12320563029009, 14.417316337807492, 15.61939629885798, 5.453469953546395, 20.63262857030954, 7.307502798967465, 8.265364277044243, 136.81247092809198, 73.53931759944567, 20.818039765291992, 32.50010313948455, 9.045030420406665, 71.12967599161823, 42.397648737730826, 47.51121024525142, 35.11773373560489, 11.859555139394281, 48.5958385491437, 35.352991656685454, 37.25301407535078, 12.197531268532789, 35.56726577806896, 37.408320215808885, 11.628223215733497, 26.004031364074415, 11.164799309569727, 6.792828214112093, 7.3816510700326, 28.007877636210132, 18.98417600811173, 63.42924899266641, 135.91927639016504, 11.349614657762999, 5.74827550618119, 94.94711235211092, 14.064731888967495, 101.04173457592043, 16.84161533740889, 27.922739463488906, 23.679199148465027, 22.20551656102927, 11.425797706698843, 96.93763834433165, 78.77864105423998, 41.38850388389159, 46.52664587881094, 13.615887052797971, 17.695276803438354, 29.70397697111276, 77.47913065210187, 35.16981764840477, 12.876583153726784, 55.73383408250881, 9.041220437991665, 55.828605108541424, 5.987017975839202, 121.05902408964083, 23.23099667810619])
caption, T_hit,count = hits_in_time_hist_new(T_pom, dt, t_plasma_start, t_plasma_end, is_plasma, figure_count_in_time_hist)
hist_file(count_in_time_hist, T_hit, count, caption);
([3544675.0, 3621470.3125, 3630876.5625, 3641195.3125, 3644942.1875, 3659268.75, 3678896.875, 3694057.8125, 3715517.1875, 3758198.4375, 5169262.5, 5321537.5, 5517818.75, 5552939.0625, 5603689.0625, 5631154.6875, 5634920.3125, 5714376.5625, 5728495.3125, 5770157.8125, 5787784.375, 5812142.1875, 5820067.1875, 5825223.4375, 5832682.8125, 5832701.5625, 5848867.1875, 5869342.1875, 5873450.0, 5885176.5625, 5885270.3125, 5890718.75, 5901062.5, 5901710.9375, 5908400.0, 5914909.375, 5927484.375, 5948735.9375, 5981801.5625, 5986975.0, 5989543.75, 5989703.125, 5997031.25, 5997040.625, 5998373.4375, 6005965.625, 6010271.875, 6023934.375, 6031875.0, 6037657.8125, 6039732.8125, 6039907.8125, 6043526.5625, 6048498.4375, 6052565.625, 6061873.4375, 6070725.0, 6076639.0625, 6095745.3125, 6097381.25, 6097628.125, 6104750.0, 6107357.8125, 6107996.875, 6109150.0, 6114273.4375, 6130432.8125, 6134353.125, 6143692.1875, 6143704.6875, 6169243.75, 6173612.5, 6173764.0625, 6174837.5, 6178754.6875, 6180159.375, 6186229.6875, 6242884.375, 6255098.4375, 6310873.4375, 6311543.75, 6318904.6875, 6320995.3125, 6330356.25, 6333112.5, 6343657.8125, 6378651.5625, 6381278.125, 6383582.8125, 6412401.5625, 6415842.1875, 6459267.1875, 6467395.3125, 6481164.0625, 6490506.25, 6493790.625, 6502773.4375, 6512564.0625, 6519839.0625, 6557235.9375, 6575253.125, 6587515.625, 6589900.0, 6612668.75, 6616107.8125, 6643256.25, 6645187.5, 6649670.3125, 6651068.75, 6655951.5625, 6656156.25, 6659534.375, 6660987.5, 6660990.625, 6674284.375, 6728289.0625, 6760932.8125, 6770703.125, 6775401.5625, 6782012.5, 6802731.25, 6817590.625, 6822240.625, 6825967.1875, 6859132.8125, 6875670.3125, 6875925.0, 6876429.6875, 6881178.125, 6892690.625, 6893903.125, 6894296.875, 6899840.625, 6923032.8125, 6923054.6875, 6928537.5, 6931159.375, 6932656.25, 6937885.9375, 6938792.1875, 6938885.9375, 6954395.3125, 6956707.8125, 6958215.625, 6970860.9375, 6972003.125, 6972990.625, 6986512.5, 6989215.625, 7003245.3125, 7004403.125, 7014714.0625, 7021767.1875, 7028535.9375, 7047664.0625, 7047779.6875, 7065946.875, 7076773.4375, 7098834.375, 7103165.625, 7143665.625, 7233932.8125, 7251701.5625, 7256354.6875, 7328571.875, 7334582.8125, 7459170.3125, 7481890.625, 7534562.5, 7687467.1875, 7716759.375, 7869054.6875, 8132498.4375, 8228043.75, 8258995.3125, 8458739.0625, 8527598.4375, 9088304.6875, 9100881.25, 388681570.3125, 494558289.0625], [13.56536421716399, 45.232427557356246, 75.2807732329058, 5.858052422167388, 44.50340510707359, 45.032802329314805, 8.355777512053523, 7.3818251857240345, 46.58623397196898, 34.68747471806966, 117.23995261631535, 15.464439955992587, 103.3483798699021, 56.23677532841027, 5.940511460928598, 91.34445368410418, 9.097911088505201, 21.071716224630745, 34.0039369536001, 79.2458716645222, 86.15022208692992, 51.42493613157704, 10.086976905865106, 10.375412785714985, 64.98288374031651, 19.305702172175796, 6.05886138328264, 6.725472974172542, 70.50142495596438, 30.121998331728772, 5.163191195647966, 20.35489793273481, 21.603133154346864, 76.30309653733107, 48.29568143636004, 31.889834066436094, 7.280665818839223, 8.357114424434176, 5.407086452340031, 24.343989680304624, 30.18191903556336, 5.625036873123596, 24.910559064619882, 15.724340796432548, 18.01797162436371, 71.7137511310576, 5.1457207830599, 29.020632743123336, 56.874815716709676, 9.08579586645211, 19.393990120333218, 11.478654630083689, 69.1028110823927, 16.81298756478418, 32.63559591074083, 50.558535469262765, 27.135855216181135, 20.679761122822832, 89.23780761120832, 38.854413416742375, 12.121692386063724, 38.337181908312346, 61.531639111732886, 77.4857934241864, 104.41685083585944, 19.409402761041502, 53.257849110245665, 10.798071908613668, 24.376291431007644, 8.464616392752559, 6.129628936468874, 52.26564115250794, 13.93615189634733, 83.62012270214206, 59.71863116016125, 15.634181378764717, 52.02612298251834, 30.75975056866877, 26.587571272621986, 7.972132965209076, 10.742761602517643, 54.616691375875, 68.89172004145158, 69.1701954085283, 38.24119031279529, 74.95561334242922, 129.54023477109556, 29.960612455812164, 9.934012875211298, 16.857532749634174, 11.211470616392148, 86.70198303323517, 37.54899760222148, 95.82047318135176, 38.875606606473895, 6.08048243299128, 17.83996234837558, 52.56022848499324, 28.85133666988162, 15.25183686628401, 15.573986807987657, 8.743515112455986, 26.21568519992784, 6.88838987972953, 24.254239728199753, 24.10512693364471, 77.10820438957039, 43.40022427148318, 96.8767965949523, 5.863914135241439, 56.03167299279379, 68.87777010292417, 6.645342338700876, 26.262114588541355, 20.641005953565116, 28.06719190762933, 9.931262042660203, 6.861294002111533, 55.94686184698004, 14.63272828907079, 22.02566207862227, 13.19063171813387, 11.354452494065114, 49.12320563029009, 14.417316337807492, 15.61939629885798, 5.453469953546395, 20.63262857030954, 7.307502798967465, 8.265364277044243, 136.81247092809198, 73.53931759944567, 20.818039765291992, 32.50010313948455, 9.045030420406665, 71.12967599161823, 42.397648737730826, 47.51121024525142, 35.11773373560489, 11.859555139394281, 48.5958385491437, 35.352991656685454, 37.25301407535078, 12.197531268532789, 35.56726577806896, 37.408320215808885, 11.628223215733497, 26.004031364074415, 11.164799309569727, 6.792828214112093, 7.3816510700326, 28.007877636210132, 18.98417600811173, 63.42924899266641, 135.91927639016504, 11.349614657762999, 5.74827550618119, 94.94711235211092, 14.064731888967495, 101.04173457592043, 16.84161533740889, 27.922739463488906, 23.679199148465027, 22.20551656102927, 11.425797706698843, 96.93763834433165, 78.77864105423998, 41.38850388389159, 46.52664587881094, 13.615887052797971, 17.695276803438354, 29.70397697111276, 77.47913065210187, 35.16981764840477, 12.876583153726784, 55.73383408250881, 9.041220437991665, 55.828605108541424, 5.987017975839202, 121.05902408964083, 23.23099667810619])
Detected energies during the discharge + Energy spectrum
multiplot(icon_fig, T_int_first,E,xle,Etot)