Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I can't make sense of any of the documentation. Can someone please provide an example of how I can parse the following shortened exiftool output using the Haskell module Text.JSON? The data is generating using the command exiftool -G -j <files.jpg>.

[{
  "SourceFile": "DSC00690.JPG",
  "ExifTool:ExifToolVersion": 7.82,
  "File:FileName": "DSC00690.JPG",
  "Composite:LightValue": 11.6
},
{
  "SourceFile": "DSC00693.JPG",
  "ExifTool:ExifToolVersion": 7.82,
  "File:FileName": "DSC00693.JPG",
  "EXIF:Compression": "JPEG (old-style)",
  "EXIF:ThumbnailLength": 4817,
  "Composite:LightValue": 13.0
},
{
  "SourceFile": "DSC00694.JPG",
  "ExifTool:ExifToolVersion": 7.82,
  "File:FileName": "DSC00694.JPG",
  "Composite:LightValue": 3.7
}]
share|improve this question

2 Answers 2

up vote 10 down vote accepted

Well, the easiest way is to get back a JSValue from the json package, like so (assuming your data is in text.json):

Prelude Text.JSON> s <- readFile "test.json"
Prelude Text.JSON> decode s :: Result JSValue
Ok (JSArray [JSObject (JSONObject {fromJSObject = [("SourceFile",JSString (JSONString {fromJSString = "DSC00690.JPG"})),("ExifTool:ExifToolVersion",JSRational False (391 % 50)),("File:FileName",JSString (JSONString {fromJSString = "DSC00690.JPG"})),("Composite:LightValue",JSRational False (58 % 5))]}),JSObject (JSONObject {fromJSObject = [("SourceFile",JSString (JSONString {fromJSString = "DSC00693.JPG"})),("ExifTool:ExifToolVersion",JSRational False (391 % 50)),("File:FileName",JSString (JSONString {fromJSString = "DSC00693.JPG"})),("EXIF:Compression",JSString (JSONString {fromJSString = "JPEG (old-style)"})),("EXIF:ThumbnailLength",JSRational False (4817 % 1)),("Composite:LightValue",JSRational False (13 % 1))]}),JSObject (JSONObject {fromJSObject = [("SourceFile",JSString (JSONString {fromJSString = "DSC00694.JPG"})),("ExifTool:ExifToolVersion",JSRational False (391 % 50)),("File:FileName",JSString (JSONString {fromJSString = "DSC00694.JPG"})),("Composite:LightValue",JSRational False (37 % 10))]})])

this just gives you a generic json Haskell data type.

The next step will be to define a custom Haskell data type for your data, and write an instance of JSON for that, that converts between JSValue's as above, and your type.

share|improve this answer
    
I originally posted a separate answer about the same time, but I find I like the wording on this one better... Oh well. I'll just add my €0.02 as a comment: have a look at the file Text/JSON.hs in json-the-package's sources. There's a whole bunch of simple JSON instances defined there and they can serve as useful examples. –  Michał Marczyk Jan 18 '10 at 22:03
1  
Nice answer! Then again I would expect nothing less from a co-author of 'Real World Haskell' (book.realworldhaskell.org). Which is a really cool book btw. –  Robert Massaioli May 24 '10 at 2:36
1  
For total newbies, you would first do Prelude>:m +Text.JSON ...before executing the lines in dons' response. –  ramanujan Dec 12 '10 at 0:04

Thanks to all. From your suggestions I was able to put together the following which translates the JSON back into name-value pairs.

data Exif = 
    Exif [(String, String)]
    deriving (Eq, Ord, Show)

instance JSON Exif where
    showJSON (Exif xs) = showJSONs xs
    readJSON (JSObject obj) = Ok $ Exif [(n, s v) | (n, JSString v) <- o]
        where 
            o = fromJSObject obj
            s = fromJSString

Unfortunately, it seems the library is unable to translate the JSON straight back into a simple Haskell data structure. In Python, it is a one-liner: json.loads(s).

share|improve this answer
    
Well, it has to be statically typed. So the Haskell one builds a "simple" JSValue type -- which you can work with directly if you wish. The benefit of using Haskell is the extra static checking you'll get if you in turn build a specific structure. –  Don Stewart Jan 19 '10 at 2:03

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.