1

I have a Java app that is hitting a 3rd party RESTful web service that is returning the following JSON:

{"fizz":
    {"widgets":
        [
            {
                "widget_id":"295874"
            },
            {
                "widget_id":"295873"
            },
            {
                "widget_id":"295872"
            }
        ],
        "otime":1361993756
    },
    "resp":"ok"
}

Normally I would use GSON or Genson to map this back to a Java POJO, but this is the only area of the code where I have to do this and I want to be lazy here ;-).

I'm trying to come up with a nifty method that extracts the 3 widget_id values (, and `) and returns them as aList`:

public List<Long> extractIdsFromJson(String json) {
    // Can I solve this with a regex perhaps?
}

Not sure what the right approach is - regex, replaceAll, something else? Thanks in advance.

4
// untested
public List<Long> extractIdsFromJson(String json) {
    List<Long> list = new ArrayList<Long>();
    Matcher matcher = Pattern.compile("\"widget_id\":\"?(\\d+)\"?").matcher(json);
    while (matcher.find())
        list.add(Long.valueOf(matcher.group(1)));
    return list;
}
7

Being lazy here will just bite you in the long run. Parse the JSON and extract the values that way; the 'effort' involved will be less, the code will be more understandable, and future code maintainers will not curse your name.

  • When you say "parse the JSON", you mean like using some kind of Scanner/StringTokenizer combo? – IAmYourFaja Feb 28 '13 at 13:04
  • 1
    @DirtyMikeAndTheBoys that means, use a JSON parsing library – John Dvorak Feb 28 '13 at 13:05
  • 1
    Use GSON/Jackson/whatever. It will save you lots of pain. For example if the widget_id comes back without quotes, which is perfectly valid JSON, a simple regex will fail whereas the parser will be fine with it. – jgm Feb 28 '13 at 13:06
  • @jgm it's not a perfectly valid JSON if there are no quotes around the widget_id key. It does bite back, however, if the value becomes a number. – John Dvorak Feb 28 '13 at 13:07
  • 1
    @jgm note that a parser will report a different data type in such a case. Could that matter? – John Dvorak Feb 28 '13 at 13:10
3

If you like being lazy. Here is the solution. I hope you know whatever entails your choice of solving the problem with regex:

  • It doesn't check for the structure of the JSON. You ignore the fact that the JSON may be malformed and just blindly extract the data.
  • It works here since you want a property whose value is not an Object or Array.

RAW regex:

"widget_id"\s*:\s*"(\d+)"

In literal string:

"\"widget_id\"\\s*:\\s*\"(\\d+)\""

Use the regex above with Matcher loop:

Pattern p = Pattern.compile("\"widget_id\"\\s*:\\s*\"(\\d+)\"");
Matcher m = p.matcher(inputString);

while (m.find()) {
    System.out.println(m.group(1));
} 
  • "returns them as a list", not "prints them out". Easy fix, though. – John Dvorak Feb 28 '13 at 13:04
  • @JanDvorak: The printing is just to show how to do it. The rest OP can adapt to his needs. – nhahtdh Feb 28 '13 at 13:07

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