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我想存储一个 Location 对象,并试图选择一个好方法来做到这一点。我只有一个小对象,我需要它是私有的,所以 SharedPreferences 或 Internal Storage 对我来说最有意义。

我看到一个对象可以写入一个字节数组,作为一个字符串存储在 SharedPreferences 中,然后写回一个对象,如此处所述

这是一个合理的方法吗?有没有更好的办法?

感谢您的任何建议。

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1 回答 1

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保存简单数据时,我更喜欢使用 JSON 对象,因为与操作字节数组相比,代码对于未来的维护者来说更简单、更容易理解。由于对象很小,使用字符串而不是字节数组的大小损失并不重要。

private static final String LATITUDE = "com.somepackage.name.LATITUDE";
private static final String LONGITUDE = "com.somepackage.name.LONGITUDE";

/**
 * Save a location/key pair.
 * 
 * @param key the key associated with the location
 * @param location the location for the key
 * @return true if saved successfully false otherwise
 */
public boolean saveLocation(String key, Location location) {
    LOG.info("Saving location");
    try {
        JSONObject locationJson = new JSONObject();

        locationJson.put(LATITUDE, location.getLatitude());
        locationJson.put(LONGITUDE, location.getLongitude());
        //other location data
        SharedPreferences.Editor edit = preferences.edit();
        edit.putString(key, locationJson.toString());
        edit.commit();
    } catch (JSONException e) {
        LOG.error("JSON Exception", e);
        return false;
    }

    LOG.info("Location {}  saved successfully at key: {}", preferences.getString(key, null),key);
    return true;
}

/**
 * Gets location data for a key.
 * 
 * @param key the key for the saved location
 * @return a {@link Location} object or null if there is no entry for the key
 */
public Location getLocation(String key) {
    LOG.info("Retrieving location at key {} ", key);
    try {
        String json = preferences.getString(key, null);

        if (json != null) {
            JSONObject locationJson = new JSONObject(json);
            Location location = new Location(STORAGE);
            location.setLatitude(locationJson.getInt(LATITUDE));
            location.setLongitude(locationJson.getInt(LONGITUDE));
            LOG.info("Returning location: {}" , location);
            return location;
        }
    } catch (JSONException e) {
        LOG.error("JSON Exception", e);
    }

    LOG.warn("No location found at key {}",  key);
    //or throw exception depending on your logic
    return null;
}
于 2012-09-10T10:36:00.070 回答