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I have been experimenting with the Tesseract api. I have noticed a difference between the api being to recognize text on a computer screen vs the text on a printed page. For example, here is the output of what was detected from an electronic version of a question in a test prep book I have:

paper. five students-liang, xramer. topaz. wegregian, and otweill-eachaaf\n\nglraviewpnne or more of exactly three plays: sunset, lamerlane, and undulation, but do not\ntraviaw7any other playsu lhe following conditions must apply:\n\nttkramar and tape: each review fewer of the plays than megregian.\n\ng,neither tape: nor negragian reviews any play liang reviews.\n\nglxramar and otweill both review lamerlane. 6xactly two of the students review exactly the\n\ntisame\n\n.lplay or plays as each nther.\n\n

So not exactly ineligible, but English characters are used, below is the output from the picture of this text in a printed book

l .r l r t. nw r r l , 1w,   y , y\n r v at? n -- r l a lvwfifwbv aw.    \n4 rrf,,.  fa4n    , t ,4? v . , l, a! .i ,w v , 4,31, .7? \nv 4r w 4. mtw air  . 1 -\na ,rwitf . 73w, .6 41, a? rag? . z   a f . 15,. -u mm 9,143\n. arr, en l l  t yriaxfi ltx  9.. , .51. a, l m: -rly z l a\n4i?  ti:  ft mt t k wvw y t 491.1,: x,  ,, 3\n,w .v .1 i fat if  31-1, y? l- -:- t 0m f, 1,, aw 4,1. ,,,+ +  .ft , u!\n.u n, . a a. v, r,.  .. , , d. . , , . ,1 wk.\n? fa ? - l. fl - l :l 1, a , l ,l ,2: i  l\n9 a .31 1 a v .1 gr  i w , v , r, v 1\n.   i-t . lg! lfy w v-l a g ,5 it 1, 135a l f t v  t l 4 c\n , 4, linketahydl , 3v ., - tl l . v, . f t t   v w i l\naid-n. : ya,er 9g!  . ,f . , ., i 4 l la  . , v\n1.1 g  . ll . 4 i  , w l .   , . , , in\nafff .1 in r w  l l ,4 i\nt :17 . w i a. l . v .,\n. 1:51.  :  tub?\n w ., tint  - .\nt l .3. l huh raw . . t 2x139. v tt\n   -  \nagain :35 apt-3333!? y 1 :3 mu ,  \n. :rtzp-nf-ia..?3411.552.: gt .\n  x 3:6,3- sailrxxfyzczij ,\n. .v  t\n. :    4 l \n.jr.,..::l,sr-3::,:5 1t u....-iv.w::.:i-kfj- l -\nuesnons 19-3 . -   ,. .\nn .3392:  t\n ltzli aglitvifs t l\n5. , .  .. .is-gvfz4fw1g 5 v\n. .    gag t.\n 5w  tun-mural . i-fi2,,35y\n. a.  may\n.. .7. .5. 443- 13:337.\n13m the school a r fiv a r .    \nt- a , xl h u\n, l . - yxlnfyyztwlrvlklnt-t\nl. 11-,-ira,,i,ot 3x161 :. j a . .\nv  - :5 5. f ,  \nhie an an e a.  aqwgam  . u\n, .  9 i: l 4, 5,3. i \n  3,13 5 :ii- t t\n5:??? , :jf :3 ,\n. l . a i j , 5:? tint - t v\n. . l, g bf .4 , 1 4,  \n., ,4 n  v .t.   v\na mm  .:   ii a.  \no n? l t. \nv w y r at  a\nre 16 an . . . w  ,\nt  m3ftga 2:12? 3 g t ., ,\ner and l ! dalttlawf. - l  ,\na  v.  -r .7 .34\n. l i.-.::: an: -s.y l\ne an,      w\no g k a jtialiict-itiv... a, 1 f ,\n27v t2 w. , f \nf n .-  k t\nlqelther  5 g.-   r -\nl . f .iftifxln 7\n0 o .   1 r \nmlcws. t  \n, naryviiit? l n .\n. -. . wk   \n, gut-xi  it s .\nx  trilwgitata, 9 a\n5 31f- t :3 v t -. .\n.  i,.!:5 t .l a\n v  f law-jam i, if\n. a. :wzgngmfn: ,v.\nv . 5 . r it w : . t a\nv0 gag furl 1. l\nt  23.5,:m-f  r . ,\n4 .- l 3.1:, -,n:.n. v v  ,\n-. a  f   gig?   . f. -\n : 3.x:   24-355   l .t .\n93:13?!   .\n. i v   :grgcif tars-17 w b ,v\n,, fwtwgiwrvg: : i v k .r l, \n: gatikzn . .w 1:3: :3:- t. . at . .\nv 53- vir  1571:. u\n\n

I know Tesseract does a lot of preprocessing by itself. I was just wondering what would cause such a dramatic difference. For reference the images were taken on an iPhone if that makes any difference. I also have this character whitelist in use

        tesseract.charWhitelist = "abcdefghijklomnopqrstuvwxyz.,!?-:+1234567890"

Thanks for any help!

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