82

Is it possible to get the whole object from debugger as Json? There is an option View text but can I somehow View JSON?

1
  • 7
    What a shame that such functionality is not out-of-the-box in IntelliJ IDEA :( Nov 1, 2021 at 19:51

10 Answers 10

86

EDIT: as noted in the comments, this is not perfect, as for some variables you will get a "stackoverflow" response

As suggested by @Mr Han's answer, here's how you can do this:

Add a new way to view objects in Intellij debugger as json by

  • Going to File | Settings | Build, Execution, Deployment | Debugger | Data Views | Java Type Renderers
  • Click + to add new renderer
  • Call it JSON renderer
  • Supply java.lang.Object for Apply renderer to objects of type
  • Choose Use following expression: and supply an expression like so:
if (null == this || this instanceof String)
  return this;

new com.google.gson.GsonBuilder().setPrettyPrinting().create().toJson(this);
  • Click OK
  • Now when you choose Copy Value on a variable, it will copy as json. enter image description here

Note: If you don't want to change default behaviour, create a "default" renderer also with "use default renderer" settings, and put it first in the list, it will use that as default and you can switch to JSON on demand by right click on debugged variable -> use renderer: JSON Renderer.

12
  • 2
    I get sometimes for certain objects, StackOverflow or OutOfMemory exception. Otherwise works like charm. Thanks.
    – Dileepa
    Feb 24, 2020 at 9:18
  • Yeah I see the same @Dileepa - but I think this is true of any approach like this? I tried making the code catch exceptions and return the original "this", but that didnt seem to help
    – Brad Parks
    Feb 24, 2020 at 12:25
  • 1
    Accepted answer doesn't work for me, but this does. Also, I like how it's a no plugin solution. Just edit settings, no download plugin hassle. May 14, 2020 at 9:28
  • 7
    I get Method threw 'java.lang.ClassNotFoundException' exception. Dec 2, 2021 at 14:34
  • 1
    The code section is not clear, can you format it properly? Despite this I have a bigger issue since I'm getting Unable to evaluate the expression Method threw 'com.google.gson.JsonIOException' exception. a solution that requires a project dependency is hardly a solution to this question imho. Apr 6, 2023 at 14:49
26

Alternatively, as seen here, you can use the following piece of code in your debug watcher:

new ObjectMapper()
    .setSerializationInclusion(JsonInclude.Include.NON_NULL)
    .writerWithDefaultPrettyPrinter()
    .writeValueAsString( myObject )
2
  • 1
    I believe it won't not work for GWT/Client-side debugging Apr 30, 2020 at 18:13
  • 2
    how we can add the parent element in this case Feb 7, 2022 at 17:55
20

You can try this code fragment into the Evaluate Expression(Alt + F8) on IntelliJ :

new com.fasterxml.jackson.databind.ObjectMapper() .registerModule(new com.fasterxml.jackson.datatype.jsr310.JavaTimeModule()) .disable(com.fasterxml.jackson.databind.SerializationFeature.WRITE_DATES_AS_TIMESTAMPS) .writerWithDefaultPrettyPrinter() .writeValueAsString( myObject );

image IntelliJ

7

You could use the Show as ... plugin for IntelliJ.

A small plugin to display formatted data out of the debugger and console.

Uses IntelliJ's build-in formatting capabilities. No more need to copy values from debugger or console to a file to format them there. Following formats are supported: JSON, SQL, XML, Base64 encoded JSON, Base64 encoded text

2
  • 7
    Unforunately it soesn't seem to work correctly while debugging as pointed out in the comment section of the plugin. I tried myself without success.
    – Rlarroque
    Sep 20, 2019 at 12:58
  • 1
    As people say in the review of the plugin and in multiple comments here on StackOverflow, this plugin does not work (anymore?). What a shame that such functionality is not out-of-the-box in IntelliJ IDEA :( Nov 1, 2021 at 19:50
6

Just follow it : File | Settings | Build, Execution, Deployment | Debugger | Data Views | Java Type Renderers, click + to add new render , copy is OK :) u can choose another jar to format it

And now , Apply, join it ~

1
  • This doesn't seem to print the full object structure. Mar 22, 2022 at 13:27
6

If you have gson dependency in your project you can create a watch variable

new GsonBuilder().setPrettyPrinting().create().gson.toJson(myObject)

where myObject is your object.

1
  • 1
    In my case new com.google.gson.GsonBuilder().setPrettyPrinting().create().toJson(myObject) was what worked while debugging.
    – Granger
    Jun 9, 2023 at 20:58
5

Follow the instructions of @BradParks, and use the following expression.

For me it did not work without fully-qualified class names. I also added some modifications to the ObjectMapper. For some reason which I don't understand, even if I have Apply renderers to object of type set to java.lang.Object, I needed to typecast this as (Object)this when used as a parameter of the writeValueAsString() method.

if (this == null 
|| this instanceof CharSequence 
|| this instanceof Number 
|| this instanceof Character 
|| this instanceof Boolean 
|| this instanceof Enum) {
// Here you may add more sophisticated test which types you want to exclude from the JSON conversion.
    return this;
}

new com.fasterxml.jackson.databind.ObjectMapper() 
        .registerModule(new com.fasterxml.jackson.datatype.jsr310.JavaTimeModule())
        .disable(com.fasterxml.jackson.databind.SerializationFeature.WRITE_DATES_AS_TIMESTAMPS)
        .setVisibility(
                com.fasterxml.jackson.annotation.PropertyAccessor.FIELD, 
                JsonAutoDetect.Visibility.ANY)
        .setSerializationInclusion(com.fasterxml.jackson.annotation.JsonInclude.Include.NON_NULL)
        .writerWithDefaultPrettyPrinter()         
        .writeValueAsString((Object)this);
5
  • Gave me a ClassNotFoundException. Mar 22, 2022 at 13:27
  • @AustinBrown on which of the classes? I would also guess that the jackson library must be included in your project in order this to work. Mar 23, 2022 at 9:14
  • It's on the jackson library. I do have the jackson library in my project, but for some reason I still get the exception. Mar 23, 2022 at 22:19
  • @AustinBrown On which class exactly? I noticed that in my code the JsonAutoDetect class is not fully qualified (but it worked for me) - could this be the problem? Mar 24, 2022 at 9:53
  • implementation("com.fasterxml.jackson.core:jackson-databind:2.13.2") implementation("com.fasterxml.jackson.datatype:jackson-datatype-jsr310:2.13.2") Mar 24, 2022 at 11:21
3

Use Intellij plugin Debug Variable Extractor More information - https://plugins.jetbrains.com/plugin/16362-debug-variable-extractor

4
  • While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. - From Review Oct 13, 2022 at 8:01
  • @ThomasIsCoding I have already provided Intellij plugin name in my answer. Any one can search this plugin and install it. No need to navigate to the link.
    – New Bee
    Oct 20, 2022 at 10:25
  • It gives me Timeout on the first run, but when I try again it works very well! This is the best solution for me
    – MAvim
    Aug 18, 2023 at 10:23
  • This works perfectly. I've tried with the Java Type Renderer but I simply could not use the Default renderer anymore. Just make sure to select only "Pretty format" on the Output format, or else it might only show an empty JSON. May 9 at 7:19
1

In case someone is having hard time to make the renderers work for more complex objects - below you can find a combined JSON renderer from:

The following renderer helped me to identify multiple fields with the same name in the class hierarchy, so I could change that.

Initially I was having IllegalArgumentException for serialization of a nested object that I wasn't able to analyse.

If there is an issue during serialization, with this renderer you can find the stack trace from the exception that you need to fix in the console.

Good luck!


if (null == this)
    return "null";

if (this instanceof CharSequence
        || this instanceof Number
        || this instanceof Character
        || this instanceof Boolean
        || this instanceof Enum) {
    // Here you may add more sophisticated test which types you want to exclude from the JSON conversion.
    return this;
}
try {
    String json = new GsonBuilder().setPrettyPrinting().create().toJson(this);
    return json;
} catch (Exception e) {
    e.printStackTrace();
}
-1

worked for me: rightclick on the variable itself to select "Evaluate Expression"

In the popup with the evaluated expression you can right click the result and select "Copy JSON"

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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