Substracting previous value in a matrix and assigning it to a new matrix

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Me Me
Me Me il 4 Feb 2021
Modificato: Stephen23 il 4 Feb 2021
Hi everyone,
I Would like some help doing the following; substracting the previous value in a cell except the first value.
Lets say we have : a=[1 5 3 6 4] , then i would like the output : b= [1 4 2 3 2].
so in the iteration it would be :
  • 1-0 = 1
  • 5-1= 4
  • 3-6 = 3
  • 6-4 = 2
The code works - the only problem is that it does not perform this operation for the first column
a=cell2mat(SortVal)
b=a;
for jj = 2:18
for ii = 2:8
b(jj,ii) = b(jj,ii) - a(jj-1,ii)
end
end
This is a:
a =
1.6766 0.6118 0.3707 0.0771 0.0010 0.2057 0.1219 0.2438
2.2065 0.8679 0.4766 0.0879 0.0017 0.3461 0.1624 0.3007
2.4282 1.0790 0.5340 0.0921 0.0019 0.4416 0.2042 0.3431
2.5295 1.2192 0.5736 0.1017 0.0028 0.4911 0.2265 0.3896
2.6850 1.3342 0.6188 0.1062 0.0032 0.5578 0.2483 0.4327
2.8442 1.3778 0.6719 0.1118 0.0039 0.5993 0.2736 0.4536
3.0451 1.4608 0.7491 0.1133 0.0055 0.6738 0.2959 0.4860
3.1747 1.5049 0.7910 0.1138 0.0062 0.7108 0.3170 0.5029
3.2891 1.5334 0.8172 0.1208 0.0062 0.7247 0.3449 0.5181
3.4065 1.5708 0.8959 0.1238 0.0064 0.7447 0.3641 0.5260
3.4989 1.6455 0.9100 0.1323 0.0064 0.7649 0.3892 0.5480
3.5645 1.6464 0.9129 0.1342 0.0065 0.7828 0.4151 0.5662
3.6503 1.6760 0.9917 0.1364 0.0074 0.7949 0.4171 0.5739
3.7089 1.7567 1.0135 0.1465 0.0077 0.8090 0.4371 0.5834
3.7803 1.7714 1.0432 0.1493 0.0083 0.8243 0.4580 0.5987
3.8278 1.7844 1.0745 0.1540 0.0085 0.8515 0.4608 0.6102
3.8642 1.8361 1.0975 0.1552 0.0114 0.8629 0.4871 0.6260
3.8935 1.8419 1.1220 0.1601 0.0115 0.8665 0.4877 0.6325
and this is my output
b =
1.6766 0.6118 0.3707 0.0771 0.0010 0.2057 0.1219 0.2438
2.2065 0.2560 0.1059 0.0109 0.0007 0.1404 0.0406 0.0569
2.4282 0.2112 0.0574 0.0042 0.0002 0.0955 0.0417 0.0424
2.5295 0.1401 0.0397 0.0096 0.0008 0.0496 0.0224 0.0465
2.6850 0.1150 0.0451 0.0045 0.0004 0.0667 0.0218 0.0431
2.8442 0.0437 0.0532 0.0056 0.0008 0.0415 0.0253 0.0209
3.0451 0.0830 0.0771 0.0014 0.0016 0.0745 0.0222 0.0323
3.1747 0.0441 0.0419 0.0005 0.0007 0.0370 0.0211 0.0170
3.2891 0.0285 0.0262 0.0070 0.0000 0.0139 0.0279 0.0152
3.4065 0.0374 0.0788 0.0030 0.0001 0.0199 0.0192 0.0079
3.4989 0.0747 0.0141 0.0086 0.0000 0.0202 0.0251 0.0219
3.5645 0.0008 0.0029 0.0018 0.0001 0.0179 0.0259 0.0182
3.6503 0.0296 0.0788 0.0022 0.0009 0.0121 0.0020 0.0077
3.7089 0.0808 0.0217 0.0101 0.0003 0.0140 0.0200 0.0095
3.7803 0.0146 0.0297 0.0028 0.0006 0.0153 0.0209 0.0153
3.8278 0.0130 0.0313 0.0048 0.0002 0.0272 0.0028 0.0115
3.8642 0.0517 0.0230 0.0011 0.0029 0.0113 0.0263 0.0158
3.8935 0.0059 0.0244 0.0049 0.0002 0.0036 0.0006 0.0065
The code does it for all the column, but not the first?

Accedi per rispondere a questa domanda.

Risposta accettata

Stephen23
Stephen23 il 4 Feb 2021
Ran in:
a = [
1.6766 0.6118 0.3707 0.0771 0.0010 0.2057 0.1219 0.2438
2.2065 0.8679 0.4766 0.0879 0.0017 0.3461 0.1624 0.3007
2.4282 1.0790 0.5340 0.0921 0.0019 0.4416 0.2042 0.3431
2.5295 1.2192 0.5736 0.1017 0.0028 0.4911 0.2265 0.3896
2.6850 1.3342 0.6188 0.1062 0.0032 0.5578 0.2483 0.4327
2.8442 1.3778 0.6719 0.1118 0.0039 0.5993 0.2736 0.4536
3.0451 1.4608 0.7491 0.1133 0.0055 0.6738 0.2959 0.4860
3.1747 1.5049 0.7910 0.1138 0.0062 0.7108 0.3170 0.5029
3.2891 1.5334 0.8172 0.1208 0.0062 0.7247 0.3449 0.5181
3.4065 1.5708 0.8959 0.1238 0.0064 0.7447 0.3641 0.5260
3.4989 1.6455 0.9100 0.1323 0.0064 0.7649 0.3892 0.5480
3.5645 1.6464 0.9129 0.1342 0.0065 0.7828 0.4151 0.5662
3.6503 1.6760 0.9917 0.1364 0.0074 0.7949 0.4171 0.5739
3.7089 1.7567 1.0135 0.1465 0.0077 0.8090 0.4371 0.5834
3.7803 1.7714 1.0432 0.1493 0.0083 0.8243 0.4580 0.5987
3.8278 1.7844 1.0745 0.1540 0.0085 0.8515 0.4608 0.6102
3.8642 1.8361 1.0975 0.1552 0.0114 0.8629 0.4871 0.6260
3.8935 1.8419 1.1220 0.1601 0.0115 0.8665 0.4877 0.6325];
b = diff(a,1,1)
b = 17×8
0.5299 0.2561 0.1059 0.0108 0.0007 0.1404 0.0405 0.0569 0.2217 0.2111 0.0574 0.0042 0.0002 0.0955 0.0418 0.0424 0.1013 0.1402 0.0396 0.0096 0.0009 0.0495 0.0223 0.0465 0.1555 0.1150 0.0452 0.0045 0.0004 0.0667 0.0218 0.0431 0.1592 0.0436 0.0531 0.0056 0.0007 0.0415 0.0253 0.0209 0.2009 0.0830 0.0772 0.0015 0.0016 0.0745 0.0223 0.0324 0.1296 0.0441 0.0419 0.0005 0.0007 0.0370 0.0211 0.0169 0.1144 0.0285 0.0262 0.0070 0 0.0139 0.0279 0.0152 0.1174 0.0374 0.0787 0.0030 0.0002 0.0200 0.0192 0.0079 0.0924 0.0747 0.0141 0.0085 0 0.0202 0.0251 0.0220
  3 Commenti
Mostra 1 commento meno recente
Me Me
Me Me il 4 Feb 2021
Modificato: Stephen23 il 4 Feb 2021
Okay, i think i solved it myself now.
I just feel like its not the most effecient way of doing it at all - So if anyone with more programming experience can help - it would be lovely.
Thanks!
a=cell2mat(SortVal)
[r,c]=size(a)
b=a;
for jj = 2:r
b(jj) = b(jj) - a(jj-1)
for ii = 2:c
b(jj,ii) = b(jj,ii) - a(jj-1,ii)
end
end
>> a
a =
1.6766 0.6118 0.3707 0.0771 0.0010 0.2057 0.1219 0.2438
2.2065 0.8679 0.4766 0.0879 0.0017 0.3461 0.1624 0.3007
2.4282 1.0790 0.5340 0.0921 0.0019 0.4416 0.2042 0.3431
2.5295 1.2192 0.5736 0.1017 0.0028 0.4911 0.2265 0.3896
2.6850 1.3342 0.6188 0.1062 0.0032 0.5578 0.2483 0.4327
2.8442 1.3778 0.6719 0.1118 0.0039 0.5993 0.2736 0.4536
3.0451 1.4608 0.7491 0.1133 0.0055 0.6738 0.2959 0.4860
3.1747 1.5049 0.7910 0.1138 0.0062 0.7108 0.3170 0.5029
3.2891 1.5334 0.8172 0.1208 0.0062 0.7247 0.3449 0.5181
3.4065 1.5708 0.8959 0.1238 0.0064 0.7447 0.3641 0.5260
3.4989 1.6455 0.9100 0.1323 0.0064 0.7649 0.3892 0.5480
3.5645 1.6464 0.9129 0.1342 0.0065 0.7828 0.4151 0.5662
3.6503 1.6760 0.9917 0.1364 0.0074 0.7949 0.4171 0.5739
3.7089 1.7567 1.0135 0.1465 0.0077 0.8090 0.4371 0.5834
3.7803 1.7714 1.0432 0.1493 0.0083 0.8243 0.4580 0.5987
3.8278 1.7844 1.0745 0.1540 0.0085 0.8515 0.4608 0.6102
3.8642 1.8361 1.0975 0.1552 0.0114 0.8629 0.4871 0.6260
3.8935 1.8419 1.1220 0.1601 0.0115 0.8665 0.4877 0.6325
and the output:
b =
1.6766 0.6118 0.3707 0.0771 0.0010 0.2057 0.1219 0.2438
0.5299 0.2560 0.1059 0.0109 0.0007 0.1404 0.0406 0.0569
0.2217 0.2112 0.0574 0.0042 0.0002 0.0955 0.0417 0.0424
0.1014 0.1401 0.0397 0.0096 0.0008 0.0496 0.0224 0.0465
0.1555 0.1150 0.0451 0.0045 0.0004 0.0667 0.0218 0.0431
0.1592 0.0437 0.0532 0.0056 0.0008 0.0415 0.0253 0.0209
0.2009 0.0830 0.0771 0.0014 0.0016 0.0745 0.0222 0.0323
0.1296 0.0441 0.0419 0.0005 0.0007 0.0370 0.0211 0.0170
0.1144 0.0285 0.0262 0.0070 0.0000 0.0139 0.0279 0.0152
0.1175 0.0374 0.0788 0.0030 0.0001 0.0199 0.0192 0.0079
0.0923 0.0747 0.0141 0.0086 0.0000 0.0202 0.0251 0.0219
0.0656 0.0008 0.0029 0.0018 0.0001 0.0179 0.0259 0.0182
0.0859 0.0296 0.0788 0.0022 0.0009 0.0121 0.0020 0.0077
0.0585 0.0808 0.0217 0.0101 0.0003 0.0140 0.0200 0.0095
0.0714 0.0146 0.0297 0.0028 0.0006 0.0153 0.0209 0.0153
0.0475 0.0130 0.0313 0.0048 0.0002 0.0272 0.0028 0.0115
0.0363 0.0517 0.0230 0.0011 0.0029 0.0113 0.0263 0.0158
0.0293 0.0059 0.0244 0.0049 0.0002 0.0036 0.0006 0.0065
Stephen23
Stephen23 il 4 Feb 2021
Modificato: Stephen23 il 4 Feb 2021
"I just feel like its not the most effecient way of doing it at all"
Using nested loops is not an efficient approach to this task.
"So if anyone with more programming experience can help - it would be lovely"
As my answer shows, using diff is much simpler and more efficient.
Just concatenate the first line on top and you are done:
b = [a(1,:);diff(a,1,1)]

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