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我对 Objective-C 比较陌生,并且遵循了 MapKit 简介的教程(位于此处)。我一直在尝试调试将 JSON 字符串传递给 NSDictionary 的问题。我收到以下错误:

2012-08-13 11:18:30.370 ArrestsPlotter[76578:c07] -[__NSCFString JSONValue]: unrecognized
selector sent to instance 0x73a6400
2012-08-13 11:18:30.372 ArrestsPlotter[76578:c07] *** Terminating app due to uncaught 
exception 'NSInvalidArgumentException', reason: '-[__NSCFString JSONValue]: unrecognized 
selector sent to instance 0x73a6400'
*** First throw call stack:
(0x17b4022 0x131bcd6 0x17b5cbd 0x171aed0 0x171acb2 0x34782 0x35351 0x1c65e 0x17b5e42 
0xda49df 0x178894f 0x16ebb43 0x16eb424 0x16ead84 0x16eac9b 0x1ddd7d8 0x1ddd88a 0x47e626 
0x3403d 0x20f5)
terminate called throwing an exception

我已将其缩小到给我问题的这条线:

NSDictionary * root = [responseString JSONValue];

根据 SBJSON 库文档,这是可能的。我认为这与我传递给 NSDictionary 的字符串有关。下面是创建 JSON 字符串的代码:

// 1
MKCoordinateRegion mapRegion = [_mapView region];
CLLocationCoordinate2D centerLocation = mapRegion.center;

// 2
NSString *jsonFile = [[NSBundle mainBundle] pathForResource:@"command" ofType:@"json"];
NSString *formatString = [NSString stringWithContentsOfFile:jsonFile encoding:NSUTF8StringEncoding error:nil];
NSString *json = [NSString stringWithFormat:formatString,
                  centerLocation.latitude, centerLocation.longitude, 0.5*METERS_PER_MILE];

// 3
NSURL *url = [NSURL URLWithString:@"http://data.baltimorecity.gov/api/views/INLINE/rows.json?method=index"];

// 4
ASIHTTPRequest *_request = [ASIHTTPRequest requestWithURL:url];
__weak ASIHTTPRequest *request = _request;

request.requestMethod = @"POST";
[request addRequestHeader:@"Content-Type" value:@"application/json"];
[request appendPostData:[json dataUsingEncoding:NSUTF8StringEncoding]];
// 5
[request setDelegate:self];
[request setCompletionBlock:^{
    NSString *responseString = [request responseString];
    NSLog(@"Response: %@", responseString);
    [self plotCrimePositions:responseString];

字符串被正确填充,并且在终端中显示如下(整个事情很大,所以我只会发布少量):

2012-08-13 11:18:30.210 ArrestsPlotter[76578:c07] Response: {
"meta" : {
"view" : {
  "id" : "zzzz-zzzz",
  "name" : "Inline View",
  "attribution" : "Baltimore Police Department",
  "attributionLink" : "http://www.baltimorepolice.org/",
  "averageRating" : 0,
  "category" : "Crime",
  "licenseId" : "CC_30_BY",
  "numberOfComments" : 0,
  "oid" : 0,
  "publicationAppendEnabled" : false,
  "publicationStage" : "unpublished",
  "rowsUpdatedAt" : 1338813661,
  "rowsUpdatedBy" : "n22b-663u",
  "signed" : false,
  "tableId" : 354024,
  "totalTimesRated" : 0,
  "viewType" : "tabular",
  "columns" : [ {
    "id" : -1,
    "name" : "sid",
    "dataTypeName" : "meta_data",
    "fieldName" : ":sid",
    "position" : 0,
    "renderTypeName" : "meta_data",
    "format" : {
    }
  }, {
    "id" : -1,
    "name" : "id",
    "dataTypeName" : "meta_data",
    "fieldName" : ":id",
    "position" : 0,
    "renderTypeName" : "meta_data",
    "format" : {
    }
  }

任何帮助,将不胜感激。我意识到我使用的教程有点过时了,但我以前从未使用过 JSON,所以我不太确定问题出在哪里。

4

4 回答 4

1

该问题是由于尝试将消息发送到不支持此方法JSONValue的实例而引起的。NSString请尝试以下代码

SBJsonParser *jsonParser = [[SBJsonParser alloc] init];
NSError *error = nil;
NSArray *jsonObjects = [jsonParser objectWithString:responseString error:&error];

这应该给你一个包含响应数据的 NSDictionaries 的 NSArray。

您还可以尝试在此处复制和粘贴整个 JSON 响应以检查它是否有效

http://jsonformatter.curiousconcept.com/

编辑:尽管正如其他一些答案所指出的,#importing SBJSON.h应该使用类别动态地将JSONValue方法添加到类中。NSString在这里解释

http://developer.apple.com/library/ios/#documentation/cocoa/conceptual/objectivec/chapters/occategories.html

于 2012-08-13T15:51:28.307 回答
1

实际上问题不在于缺少标头导入(嗯,这可能是问题的一部分),而是缺少实现.m文件。您需要确保它NSObject+SBJson.m包含在您的项目中,无论是独立的还是作为库的一部分。

于 2012-08-13T15:54:09.070 回答
0

该错误表明该JSONValue方法未知。您是否已将其添加#import "SBJSON.h"到您的课程中?

于 2012-08-13T15:45:36.713 回答
0

这里的问题是您没有将 SBJSON 正确导入到您的项目中。看看并确保您在源文件的顶部包含了带有正确标题的导入语句。

于 2012-08-13T15:45:48.510 回答