跳过NaN值以获取distan

2024-04-26 19:06:51 发布

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数据集的一部分(实际上我的数据集大小(106,1800)):

df=

    1           1.1     2           2.1     3           3.1     4           4.1     5           5.1
0   43.1024     6.7498  NaN         NaN     NaN         NaN     NaN         NaN     NaN         NaN
1   46.0595     1.6829  25.0695     3.7463  NaN         NaN     NaN         NaN     NaN         NaN
2   25.0695     5.5454  44.9727     8.6660  41.9726     2.6666  84.9566     3.8484  44.9566     1.8484
3   35.0281     7.7525  45.0322     3.7465  14.0369     3.7463  NaN         NaN     NaN         NaN
4   35.0292     7.5616  45.0292     4.5616  23.0292     3.5616  45.0292     6.7463  NaN         NaN

根据汤姆的回答,我现在能做的是:

  • 我手动编写了第一行和第二行,如p和q值:

p=

^{pr2}$

q=

[[45.0595,7.6829],[45.0595,7.6829],[45.0564,7.6820],[45.0533,7.6796],[45.0501,7.6775]]

然后:

__all__ = ['frdist']


def _c(ca, i, j, p, q):

    if ca[i, j] > -1:
        return ca[i, j]
    elif i == 0 and j == 0:
        ca[i, j] = np.linalg.norm(p[i]-q[j])
    elif i > 0 and j == 0:
        ca[i, j] = max(_c(ca, i-1, 0, p, q), np.linalg.norm(p[i]-q[j]))
    elif i == 0 and j > 0:
        ca[i, j] = max(_c(ca, 0, j-1, p, q), np.linalg.norm(p[i]-q[j]))
    elif i > 0 and j > 0:
        ca[i, j] = max(
            min(
                _c(ca, i-1, j, p, q),
                _c(ca, i-1, j-1, p, q),
                _c(ca, i, j-1, p, q)
            ),
            np.linalg.norm(p[i]-q[j])
            )
    else:
        ca[i, j] = float('inf')

    return ca[i, j]

然后:

def frdist(p, q):

    # Remove nan values from p
    p = np.array([i for i in p if np.any(np.isfinite(i))], np.float64)
    q = np.array([i for i in q if np.any(np.isfinite(i))], np.float64)

    len_p = len(p)
    len_q = len(q)

    if len_p == 0 or len_q == 0:
        raise ValueError('Input curves are empty.')

    # p and q will no longer be the same length
    if len(p[0]) != len(q[0]):
        raise ValueError('Input curves do not have the same dimensions.')

    ca = (np.ones((len_p, len_q), dtype=np.float64) * -1)

    dist = _c(ca, len_p-1, len_q-1, p, q)
    return(dist)

frdist(p, q)

它起作用了。但是我怎么能把p和q应用到整个数据集呢?不是选择一行一行的吗?在

最后,我需要得到106 to 106对角对称矩阵


Tags: and数据normlenreturnifdefnp
2条回答
网友
1楼 · 编辑于 2024-04-26 19:06:51

删除NaN

简单明了:

p = p[~np.isnan(p)]


计算整个数据集的Fréchet距离

最简单的方法是使用SciPy中的成对距离计算^{}。它通过n维数组进行m观察,因此我们需要在frdist内使用reshape(-1,2)来重塑我们的行数组。pdist返回压缩(上三角)距离矩阵。我们根据要求使用^{}来得到m x m对角的{}对称矩阵。在

^{pr2}$

结果:

[[ 0.         18.28131545 41.95464432 29.22027212 20.32481187]
 [18.28131545  0.         38.9573328  12.59094238 20.18389517]
 [41.95464432 38.9573328   0.         39.92453004 39.93376923]
 [29.22027212 12.59094238 39.92453004  0.         31.13715882]
 [20.32481187 20.18389517 39.93376923 31.13715882  0.        ]]


不需要重新发明轮子

Fréchet距离计算已经由^{}提供。因此,下面将给出与上述相同的结果:

from scipy.spatial.distance import pdist, squareform
import similaritymeasures

def frechet(p, q):
    p = p[~np.isnan(p)].reshape(-1,2)
    q = q[~np.isnan(q)].reshape(-1,2)
    return similaritymeasures.frechet_dist(p,q)

print(squareform(pdist(df.values, frechet)))
网友
2楼 · 编辑于 2024-04-26 19:06:51

我认为您需要做的唯一更改是在frdist函数中,首先从p中删除nan值。这就需要删除pq长度相同的条件,但我认为这应该是可以的,因为您自己说,p有1个值,q有1800个值。在

def frdist(p, q):

    # Remove nan values from p
    p = np.array([i for i in p if np.any(np.isfinite(i))], np.float64)
    q = np.array(q, np.float64)

    len_p = len(p)
    len_q = len(q)

    if len_p == 0 or len_q == 0:
        raise ValueError('Input curves are empty.')

    # p and q no longer have to be the same length
    if len(p[0]) != len(q[0]):
        raise ValueError('Input curves do not have the same dimensions.')

    ca = (np.ones((len_p, len_q), dtype=np.float64) * -1)

    dist = _c(ca, len_p-1, len_q-1, p, q)
    return(dist)

然后给出:

^{pr2}$

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