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我正在使用以下代码将 json 代码转换为数组并将值插入 mysql。首先,我使用了一个 for 循环来创建这样的表:

$url='http://www.coinchoose.com/api.php';
$contents = file_get_contents($url); 
$contents = utf8_encode($contents); 
$results = json_decode($contents, true); 

for ($i=0; $i<=22; $i++){

mysql_query("CREATE TABLE $symbol(
id INT NOT NULL AUTO_INCREMENT, PRIMARY KEY(id), timestamp BIGINT, symbol VARCHAR(3), name VARCHAR(20), algo VARCHAR(20), currentBlocks VARCHAR(20), difficulty DECIMAL (18,9), reward DECIMAL (18,9), price DECIMAL (18,9), exchange VARCHAR(20), ratio DECIMAL (8,4))")
or die(mysql_error()); 

}

然后我使用另一个 for 循环将来自http://www.coinchoose.com/api.php的 json api 的值插入到 mysql 表中,如下所示:

$url='http://www.coinchoose.com/api.php';
$contents = file_get_contents($url); 
$contents = utf8_encode($contents); 
$results = json_decode($contents, true); 
print_r($results);

$time=time();

for ($i=0; $i<=22; $i++){
$symbol=strtolower($results[$i]['symbol']);
$name=$results[$i]['name'];
$algo=$results[$i]['algo'];
$currentBlocks=$results[$i]['currentBlocks']; 
$difficulty=$results[$i]['difficulty'];
$reward=$results[$i]['reward']; 
$price=$results[$i]['price'];
$exchange=$results[$i]['exchange']; 
$ratio=$results[$i]['ratio'];

mysql_query("INSERT INTO $symbol VALUES (id, $time, '$symbol', '$name', '$algo', '$currentBlocks',  $difficulty, '$reward', $price, '$exchange', $ratio)") or die(mysql_error());  

}

我收到以下错误,我不明白:

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 45
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 46
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 47
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 48
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 49
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 50
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 51
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 52
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0

( ! ) Notice: Undefined offset: 21 in C:\wamp\www\api.php on line 53
Call Stack
#   Time    Memory  Function    Location
1   0.0004  706424  {main}( )   ..\api.php:0


You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'VALUES (id, 1369998276, '', '', '', '', , '', , '', )' at line 1

我希望有人能澄清我为什么会收到这个错误。任何更好地编写上述代码的建议,因为我确信它可以以更漂亮/更好的方式完成,非常感谢。代码确实有效,因为值被解析到 mysql 中!但是,错误仍然出现

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2 回答 2

1

您的 for 循环中有错误的条件。

for ($i = 0; $i < 22; $i++ ) {    // Notice the `<` and not `<=`

或者,如评论中所建议:

for ($i = 0; $i < count($result); $i++ ) {
于 2013-05-31T11:21:11.703 回答
0

$results = json_decode($contents, true);插入之后$numcount = count($results);,而不是for ($i=0; $i<=22; $i++){你应该像这样插入变量:for ($i=0; $i<$numcount; $i++){

于 2013-05-31T11:23:54.623 回答