What’s the simplest way to call Http POST url using Delphi?
Inspired by the question What’s the simplest way to call Http GET url using Delphi? I really would like to see a sample of how to use POST. Preferably to receive XML from the call.
Added: What about including an image or other file in the post data?
Solution 1:
Using Indy. Put your parameters in a StringList (name=value) and simply call Post with the URL and StringList.
function PostExample: string;
var
lHTTP: TIdHTTP;
lParamList: TStringList;
begin
lParamList := TStringList.Create;
lParamList.Add('id=1');
lHTTP := TIdHTTP.Create;
try
Result := lHTTP.Post('http://blahblahblah...', lParamList);
finally
lHTTP.Free;
lParamList.Free;
end;
end;
Solution 2:
Here's an example of using Indy to Post a JPEG to a webserver running Gallery
I've got more examples of this sort of stuff (I use them in a screensaver I wrote in Delphi for the Gallery project available here, or more info on the Gallery website here).
The important bit I suppose is that the JPEG gets passed in as a stream.
procedure AddImage(const AlbumID: Integer; const Image: TStream; const ImageFilename, Caption, Description, Summary: String);
var
Response: String;
HTTPClient: TidHTTP;
ImageStream: TIdMultipartFormDataStream;
begin
HTTPClient := TidHTTP.Create;
try
ImageStream := TIdMultiPartFormDataStream.Create;
try
ImageStream.AddFormField('g2_form[cmd]', 'add-item');
ImageStream.AddFormField('g2_form[set_albumId]', Format('%d', [AlbumID]));
ImageStream.AddFormField('g2_form[caption]', Caption);
ImageStream.AddFormField('g2_form[force_filename]', ImageFilename);
ImageStream.AddFormField('g2_form[extrafield.Summary]', Summary);
ImageStream.AddFormField('g2_form[extrafield.Description]', Description);
ImageStream.AddObject('g2_userfile', 'image/jpeg', Image, ImageFilename);
Response := HTTPClient.Post('http://mygallery.com/main.php?g2_controller=remote:GalleryRemote', ImageStream);
finally
ImageStream.Free;
end;
finally
HTTPClient.Free;
end;
end;
Solution 3:
Again, Synapse TCP/IP library to the rescue. Use the HTTPSEND routine HTTPPostURL.
function HttpPostURL(const URL, URLData: string; const Data: TStream): Boolean;
Your URL would be the resource to post too, the URLDATA would be the form data, and your XML results would come back as a stream in DATA.