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I try to do a simple rest call with springs resttemplate:

private void doLogout(String endpointUrl, String sessionId) {
    template.getForObject("http://{enpointUrl}?method=logout&session={sessionId}", Object.class,
            endpointUrl, sessionId);
}

Where the endpointUrl variable contains something like service.host.com/api/service.php

Unfortunately, my call results in a org.springframework.web.client.ResourceAccessException: I/O error: service.host.com%2Fapi%2Fservice.php

So spring seems to encode my endpointUrl string before during the creation of the url. Is there a simple way to prevent spring from doing this?

Regards

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3 Answers 3

up vote 1 down vote accepted

There is no easy way to do this. URI variables are usually meant for one path element or a query string parameter. You're trying to pass multiple elements.

One workaround is to use UriTemplate to produce the URL with the URI variables as you have them, then URL-decode it and pass that to your RestTemplate.

String url = "http://{enpointUrl}?method=logout&session={sessionId}";
URI expanded = new UriTemplate(url).expand(endpointUrl, sessionId); // this is what RestTemplate uses 
url = URLDecoder.decode(expanded.toString(), "UTF-8"); // java.net class
template.getForObject(url, Object.class);
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this solved the issue with the escaped / in my url. But unfortunately, it does not solve my whole problem. There are cases, where "payload" contains a JSON-string. This json String is encoded somewhere inside the rest template code. The String URL that is passed to the templates getForObject method looks as expected. But then I receive an exception when spring tries to expand the json part of my url... –  user1145874 Jan 3 '14 at 14:46
    
@user1145874 You would have to ask another question with all the details, but I recommend against putting JSON as a query string request parameter. Send it in the body of a POST or PUT. –  Sotirios Delimanolis Jan 3 '14 at 14:49

You can use the overloaded variant that takes a java.net.URI instead public T getForObject(URI url, Class responseType) throws RestClientException

From Spring's own documentation

UriComponents uriComponents =
    UriComponentsBuilder.fromUriString("http://example.com/hotels/{hotel}/bookings/{booking}").build()
        .expand("42", "21")
        .encode();

URI uri = uriComponents.toUri();
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Depends on which version of Spring you're using. If your version is too old, for example, version 3.0.6.RELEASE, you'll not have such facility as UriComponentsBuilder with your spring-web jar.

What you need is to prevent Spring RestTemplate from encoding the URL. What you could do is:

import java.net.URI;

StringBuilder builder = new StringBuilder("http://");
builder.append(endpointUrl);
builder.append("?method=logout&session=");
builder.append(sessionId);

URI uri = URI.create(builder.toString());
restTemplate.getForObject(uri, Object.class);

I tested it with Spring version 3.0.6.RELEASE, and it works.

In a word, instead of using restTemplate.getForObject(String url, Object.class), use restTemplate.getForObject(java.net.URI uri, Object.class)

See the rest-resttemplate-uri section of the Spring document

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