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我正在使用 yelp API 来为我的网站随机抽取附近的列表。来自他们网站上的 yelp 文档:

rating                 number   Rating for this business (value ranges from 1, 1.5, ... 4.5, 5)
rating_img_url         string   URL to star rating image for this business (size = 84x17)
rating_img_url_small   string   URL to small version of rating image for this business (size = 50x10)
rating_img_url_large   string   URL to large version of rating image for this business (size = 166x30)
snippet_text           string   Snippet text associated with this business
snippet_image_url      string   URL of snippet image associated with this business
location               dict     Location data for this business
location.address       list     Address for this business. Only includes address fields.
location.display_address list   Address for this business formatted for display. Includes all address fields, cross streets and city, state_code, etc.
location.city          string   City for this business
location.state_code    string   ISO 3166-2 state code for this business
location.postal_code   string   Postal code for this business
location.country_code  string   ISO 3166-1 country code for this business
location.cross_streets string   Cross streets for this business

如何输出位置变量,例如 location.display_address 等?我下面的代码通过回显“$response->businesses->rating”正确输出字符串和数字。但是,我的代码的最后一行不起作用。

// Handle Yelp response data
$response = json_decode($data);
$business = $response->businesses;

$numbers = range(0, 19);
shuffle($numbers);
echo "<img src='".$business[$numbers[$ran]]->image_url."'><br/>";
echo $business[$numbers[$ran]]->name."<br/>";
echo "<img border=0 src='".$business[$numbers[$ran]]->rating_img_url_large."'><br/>";
echo "<br/>";

echo $business[$numbers[$ran]]->location[display_address]."<br/>";

我得到的错误是

“致命错误:不能在第 51 行的 /home/content/38/11397138/html/yelpcall.php 中使用 stdClass 类型的对象作为数组”

编辑: var dump 返回:

object(stdClass)#14 (6) { ["city"]=> string(11) "Chino Hills" ["display_address"]=> array(2) { [0]=> string(14) "2923 Chino Ave" [1]=> string(21) "Chino Hills, CA 91709" } ["postal_code"]=> string(5) "91709" ["country_code"]=> string(2) "US" ["address"]=> array(1) { [0]=> string(14) "2923 Chino Ave" } ["state_code"]=> string(2) "CA" }
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2 回答 2

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试试var_dump($business[$numbers[$ran]]->location);这个会告诉你更多关于你正在使用的变量,并帮助你公开它的属性。

在您的情况下,位置属性看起来像是 StdClass 类型。因此访问属性如下:$business[$numbers[$ran]]->location->display_address

编辑:感谢您的更新。StdClass 的 display_address 属性是一个数字索引数组,因此要访问数组的元素,您可以这样做: $business[$numbers[$ran]]->location->display_address[0] 但它看起来更像是这样使用的:

$address = $business[$numbers[$ran]]->location->display_address;
foreach( $address as $line ){
    echo $line.'<br />';
}
于 2013-07-22T07:46:17.513 回答
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试试 echo $business[$numbers[$ran]]->location["display_address"]."
"; (在“display_address”键名周围添加引号。

于 2013-07-22T07:46:23.163 回答