Upload 3 files
Browse files- dataset.csv +498 -0
- net.py +42 -0
- start.py +15 -0
dataset.csv
ADDED
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1 |
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0,123456
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0,12345
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0,123456789
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0,iloveyou
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1,48-Sa~RF>>cmmhiP
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294 |
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1,qDuf54s(P
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1,'"^ZVQu*'xf*y#Xp
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1,dai2}TKg=t,*
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1,-b-Aq1P{
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1,&whRj\+i}8[tr
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1,V5`=Sp&$A&@ejg\y
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1,"KQ=&!"wE_$%NX)
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1,6H`<tV+^c
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|
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1,H>YyQ3Oj
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1,5nGAzy*6g
|
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1,?PxWF;>>O
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1,G,]h>;'EU`*V
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1,??izi/L#
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1,CQhB&5nh
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1,8xn/Fv}1X:5!#
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314 |
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1,~UEUs6D$uQoI%@x
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1,btek@B|6/{cIB2
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1,VEk.{~C7SM.b
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1,/K<0=RK?}%yIC+)
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1,2Q6\}7wva3AuN
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1,J-i}6/Te0@5x
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1,%ZLEmu4<5y],(
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1,N-6]-:1{K
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1,5yd59`xw}Jo[
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1,m3KNOdI@>Z%v%Xi|
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1,!y(~)yvn
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1,RJGg*`B/8OH85k{
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1,\71pW8\0=
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1,H|/yd<LfoC
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1,~)~pxpU!9B~Ov
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1,BZ-s|u.<F&G1\
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1,tp$ycI0@]f:Q)
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1,7.1eL4|^nN-Qx'kW
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1,3Lb;eEs{CaR^)
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1,"wz^%&'hl
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1,/'+]AK;o0
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1,s3!.&KA=`
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1,="<B'm{czSdY|biA
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1,1zUv6tR"!]CZ-
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1,vgIk|A//:\wyvG
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1,(i+&8Xv1
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1,[N>,WT(!oPYaV
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390 |
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1,&70@jThQhZ
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1,'dTpsw>zS
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1,<s\gm?!Ozv{v
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1,zf8$r|8\CRE)#{\Q
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1,FQ\zC!T^?b=o{42k
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395 |
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1,jwo-GP,Y:Y|
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1,93Pha+F`s
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1,$|`*hfxd9l
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1,5e|#Mv#Y4y
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1,9n}6u`w7~%G'a,h
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1,uqF9L=6S+a.W
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1,%LC)`r&!kJQ.
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1,0,(-m#V}#(X_V{
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403 |
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1,hTd\64+aJIwuC0/<
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404 |
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1,+|vB&=J/
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1,;ZNv$^vALf
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1,c(:WR|D'zpd{<
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1,M~/d-s($=1+*$F:
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1,C?>5$uPh;
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1,9i4W5bGuT
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1,4dsqI7q>vus3~gM(
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1,x)EvQ05C
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1,;rI8$'%688|sQms
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1,^r}P<=H[i=/&FsXs
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1,[xY#,=[`
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1,sI^(L!O]zE8|x
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1,F)7\~h?QRc`
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1,$f^g1P0e^fI~$cv*
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418 |
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1,Zn1RYWDJ26
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419 |
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1,Ih'AvQ4,X?;6Oz.9
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1,8f0\b:T]%O$L
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1,vB:@s{gS'A]A=
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1,^:p8].'n=|l
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1,R'T>o@T)PXT4A
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1,@f|[tbZ.9qPt8
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426 |
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1,~7c(vWB?*cq*
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1,uZJQ@#DOr
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1,Y,.MF&C6I
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1,~$dhH+BSAHr
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430 |
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1,fK;8U{`!psp}p
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1,K-wi?Eo7>}
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1,LA-dT3)aNzAR?S)
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1,_T/3~KwK[W%zP<-
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1,hQ$tUH[6//C
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439 |
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1,sL\gj3JBX`n)6\n
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440 |
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1,{LcJTzt44Uv+cIv]
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441 |
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1,ZVt`yywml
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1,P2y#0eERPe:
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1,G{Fi+jce6gXG8?Q
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444 |
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1,>Ow~~ODA;
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1,9j)<S%AV
|
446 |
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1,!E(WfdR_]:^}meg
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447 |
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1,bg7m-:}*LU
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448 |
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1,-t7"i!,{
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449 |
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1,d3u.h%(K?n$)+jc
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450 |
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1,_4N?52vs
|
451 |
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1,"P>z&-nQ&
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452 |
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1,A}h@fe-#CYrM)O
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1,h5A(Hx65iJ9a
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1,wH6BSDCB-|aEQV.8
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1,?Y/e^C8J
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1,.:x!cMY;
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1,)G(\v@wSulmPJC9
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1,,pZ)__r{q
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1,TI]18^Cjz?~yg
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462 |
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1,`,Wk82|+*XSwBhm
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1,l?s2'd<rS
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1,UOJj$@KB8v$,{;M
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465 |
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1,[DIWXlF</L2
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466 |
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1,mziu,lA{v`tfDb,
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467 |
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1,!+2)5sz1x
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468 |
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1,+^BM[k<%u
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469 |
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470 |
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1,hO{qFn=S
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471 |
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1,>u]#`yZ{b*
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472 |
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1,F97&lX/&ztN75%/'
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473 |
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1,My\t$Y0f5rN.
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474 |
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1,-?v<i9q%*Nb]xe5
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475 |
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1,jq3fyeg2Zp=
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476 |
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1,~Fn!?+0\,)8P^AjE
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477 |
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1,NVb@*i(+
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478 |
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1,|EN(CKl#t,9
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479 |
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1,Ouc}0Qm;+"Af;M<
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480 |
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1,-&Ndrl6|*/[
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481 |
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1,dXu_0S3y1a
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482 |
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1,>Z"Ug4A0Q
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483 |
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1,}sLWn$_j1Z=hB
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484 |
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1,C)$nCm=\)(tqaiX;
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485 |
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1,!iZT{w=xz*x0<j
|
486 |
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1,]o{0RCWF[:v
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487 |
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1,&V_l@U_u
|
488 |
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1,L!J9Rfi-t<~
|
489 |
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1,fCSI1=DQ\[*1Ko
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490 |
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1,}%2N05B*]^Bv
|
491 |
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1,s&`#VMo[j%O\''I
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492 |
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1,wQb!udYWiCAA\UCH
|
493 |
+
1,5'JN@Hs7,%
|
494 |
+
1,^fL\Pn5n;D0j))
|
495 |
+
1,8\xz7\'Z
|
496 |
+
1,)c9`XpDr
|
497 |
+
1,[r\jm3\C/H7/'
|
498 |
+
1,Y$GmVHE#1j2xl
|
net.py
ADDED
@@ -0,0 +1,42 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
from tensorflow.keras.preprocessing.sequence import pad_sequences
|
2 |
+
from tensorflow.keras.layers import Dense, Embedding, Flatten, Dropout
|
3 |
+
from tensorflow.keras.models import Sequential
|
4 |
+
import numpy as np
|
5 |
+
import csv
|
6 |
+
|
7 |
+
dataset = "dataset.csv"
|
8 |
+
inp_len = 16
|
9 |
+
|
10 |
+
X = []
|
11 |
+
y = []
|
12 |
+
|
13 |
+
with open(dataset, 'r') as f:
|
14 |
+
csv_reader = csv.reader(f)
|
15 |
+
next(csv_reader) # Skip the header row if it exists
|
16 |
+
|
17 |
+
for row in csv_reader:
|
18 |
+
label = int(row[0])
|
19 |
+
text = row[1]
|
20 |
+
text = [ord(char) for char in text]
|
21 |
+
X.append(text)
|
22 |
+
y.append(label)
|
23 |
+
|
24 |
+
X = np.array(pad_sequences(X, maxlen=inp_len, padding='post'))
|
25 |
+
y = np.array(y)
|
26 |
+
|
27 |
+
model = Sequential()
|
28 |
+
model.add(Embedding(input_dim=1500, output_dim=256, input_length=inp_len))
|
29 |
+
model.add(Flatten())
|
30 |
+
model.add(Dropout(0.5))
|
31 |
+
model.add(Dense(512, activation="tanh"))
|
32 |
+
model.add(Dropout(0.5))
|
33 |
+
model.add(Dense(256, activation="selu"))
|
34 |
+
model.add(Dense(256, activation="softplus"))
|
35 |
+
model.add(Dense(1, activation="softplus"))
|
36 |
+
|
37 |
+
model.compile(optimizer="adam", loss="binary_crossentropy", metrics=["accuracy",])
|
38 |
+
|
39 |
+
model.fit(X, y, epochs=64, batch_size=4, workers=2, use_multiprocessing=True)
|
40 |
+
|
41 |
+
model.save("net.h5")
|
42 |
+
|
start.py
ADDED
@@ -0,0 +1,15 @@
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
1 |
+
from tensorflow.keras.models import load_model
|
2 |
+
from tensorflow.keras.preprocessing.sequence import pad_sequences
|
3 |
+
import numpy as np
|
4 |
+
|
5 |
+
model = load_model("net.h5")
|
6 |
+
|
7 |
+
def preprocess(text: str):
|
8 |
+
return np.array(pad_sequences([[ord(char) for char in text],], maxlen=16, padding='post'))
|
9 |
+
|
10 |
+
def clf(text: str):
|
11 |
+
return model.predict(preprocess(text))
|
12 |
+
|
13 |
+
if __name__ == "__main__":
|
14 |
+
while True:
|
15 |
+
print("Secure:", clf(input("Password: "))[0])
|