[{"id":407,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"某学生记录了连续5天的气温变化情况，每天的最高气温分别为：12℃、15℃、13℃、16℃、14℃。为了分析气温的波动情况，该学生计算了这组数据的极差。请问这组数据的极差是多少？","answer":"C","explanation":"极差是一组数据中最大值与最小值之差。题目中给出的5天气温数据为：12℃、15℃、13℃、16℃、14℃。其中最高气温是16℃，最低气温是12℃。因此，极差 = 16 - 12 = 4℃。故正确答案为C。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 17:27:16","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"2℃","is_correct":0},{"id":"B","content":"3℃","is_correct":0},{"id":"C","content":"4℃","is_correct":1},{"id":"D","content":"5℃","is_correct":0}]},{"id":474,"subject":"数学","grade":"初一","stage":"小学","type":"选择题","content":"2个","answer":"待完善","explanation":"解析待完善","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 17:56:15","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":2496,"subject":"数学","grade":"九年级","stage":"初中","type":"选择题","content":"某学生设计了一个圆形花坛，其外围是一个边长为8米的正方形地砖区域。花坛恰好内切于该正方形，即花坛的直径等于正方形的边长。若在该花坛中随机撒一粒种子，则种子落在花坛内的概率是多少？","answer":"A","explanation":"本题考查圆与正方形的几何关系及概率初步知识。正方形边长为8米，因此面积为 8² = 64 平方米。花坛为内切圆，直径也为8米，半径为4米，面积为 π×4² = 16π 平方米。种子随机落在正方形区域内，落在花坛内的概率即为花坛面积与正方形面积之比：16π \/ 64 = π\/4。因此正确答案为A。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-10 15:18:21","updated_at":"2026-01-10 15:18:21","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"π\/4","is_correct":1},{"id":"B","content":"π\/2","is_correct":0},{"id":"C","content":"1\/4","is_correct":0},{"id":"D","content":"2\/π","is_correct":0}]},{"id":2770,"subject":"历史","grade":"七年级","stage":"初中","type":"选择题","content":"某学生在参观博物馆时看到一件唐代的陶俑，其服饰风格融合了中亚地区的特点，面部轮廓立体，手持胡琴。这件文物最能反映唐代哪一方面的历史特征？","answer":"C","explanation":"题目中的陶俑具有中亚服饰特征和胡琴等外来文化元素，说明唐代社会受到外来文化的影响。唐朝国力强盛，对外交通发达，通过丝绸之路与中亚、西亚等地频繁交流，吸收了大量外来艺术、音乐和服饰文化。因此，这件文物最能体现唐代中外文化交流频繁的特点。选项A与题干无关；选项B错误，唐代是开放的朝代；选项D不符合史实，佛教虽盛行但并未取代本土信仰。故正确答案为C。","solution_steps":"","common_mistakes":"","learning_suggestions":"","difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-12 10:41:04","updated_at":"2026-01-12 10:41:04","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"唐代农业技术高度发达","is_correct":0},{"id":"B","content":"唐代实行严格的闭关锁国政策","is_correct":0},{"id":"C","content":"唐代中外文化交流频繁","is_correct":1},{"id":"D","content":"唐代佛教完全取代了本土信仰","is_correct":0}]},{"id":1813,"subject":"数学","grade":"八年级","stage":"初中","type":"选择题","content":"某学生在测量一个直角三角形的两条直角边时，得到长度分别为3和4，他想知道斜边的长度。根据勾股定理，斜边的长度应为多少？","answer":"A","explanation":"根据勾股定理，直角三角形的两条直角边的平方和等于斜边的平方。设斜边为c，则有：3² + 4² = c²，即9 + 16 = 25，所以c² = 25，因此c = 5。故正确答案为A。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-06 16:19:25","updated_at":"2026-01-06 16:19:25","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"5","is_correct":1},{"id":"B","content":"6","is_correct":0},{"id":"C","content":"7","is_correct":0},{"id":"D","content":"8","is_correct":0}]},{"id":291,"subject":"数学","grade":"初一","stage":"小学","type":"选择题","content":"某学生在整理班级同学的课外阅读情况时，收集了10名同学每周课外阅读时间（单位：小时），数据如下：3，5，4，6，5，7，5，4，6，5。这组数据的众数和中位数分别是多少？","answer":"A","explanation":"首先将数据从小到大排序：3，4，4，5，5，5，5，6，6，7。众数是出现次数最多的数，其中5出现了4次，次数最多，因此众数是5。中位数是数据按顺序排列后位于中间位置的数。由于共有10个数据（偶数个），中位数为第5个和第6个数的平均数，即(5 + 5) ÷ 2 = 5。因此，众数是5，中位数是5，正确答案是A。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 15:32:36","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"众数是5，中位数是5","is_correct":1},{"id":"B","content":"众数是4，中位数是5","is_correct":0},{"id":"C","content":"众数是5，中位数是4.5","is_correct":0},{"id":"D","content":"众数是6，中位数是5.5","is_correct":0}]},{"id":1099,"subject":"数学","grade":"七年级","stage":"初中","type":"填空题","content":"在一次班级图书捐赠活动中，某学生捐出的图书数量比班级平均每人捐书数量的2倍还多3本。如果班级共有30名学生，总共捐了150本书，那么这名学生捐了___本书。","answer":"13","explanation":"首先根据题意，班级共有30名学生，总共捐了150本书，因此平均每人捐书数量为150 ÷ 30 = 5本。题目中说某学生捐出的图书数量比平均每人捐书数量的2倍还多3本，即2 × 5 + 3 = 10 + 3 = 13本。因此，这名学生捐了13本书。本题考查了有理数的四则运算和一元一次方程的基本思想，通过平均数建立数量关系，适合七年级学生水平。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-06 08:57:21","updated_at":"2026-01-06 08:57:21","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":395,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"某学生记录了一周内每天完成数学作业所用的时间（单位：分钟），数据如下：45，50，48，52，47，49，51。为了分析这些数据，该学生计算了这组数据的平均数。请问这组数据的平均数最接近以下哪个值？","answer":"C","explanation":"要计算这组数据的平均数，需要将所有数据相加，然后除以数据的个数。数据为：45，50，48，52，47，49，51，共7个数据。求和：45 + 50 + 48 + 52 + 47 + 49 + 51 = 342。平均数为 342 ÷ 7 ≈ 48.857。这个值最接近50，因此正确答案是C。本题考查的是数据的收集、整理与描述中的平均数计算，属于七年级数学课程内容，难度为简单。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2025-12-29 17:14:48","updated_at":"2025-12-30 11:11:27","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"46","is_correct":0},{"id":"B","content":"48","is_correct":0},{"id":"C","content":"50","is_correct":1},{"id":"D","content":"52","is_correct":0}]},{"id":1074,"subject":"数学","grade":"七年级","stage":"初中","type":"填空题","content":"在一次班级图书角整理活动中，某学生统计了上周同学们借阅图书的情况。其中，借阅科普类图书的人数比借阅文学类图书的人数多5人，两类图书共被借阅了37人次。设借阅文学类图书的人数为x，则根据题意可列出一元一次方程：________。","answer":"x + (x + 5) = 37","explanation":"根据题意，借阅文学类图书的人数为x，则借阅科普类图书的人数为x + 5。两类图书共被借阅37人次，因此总人数为文学类人数加上科普类人数，即x + (x + 5) = 37。这是一道基于一元一次方程知识点的应用题，考查学生将实际问题转化为数学方程的能力，符合七年级数学课程要求。","solution_steps":null,"common_mistakes":null,"learning_suggestions":null,"difficulty":"简单","points":1,"is_active":1,"created_at":"2026-01-06 08:53:24","updated_at":"2026-01-06 08:53:24","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[]},{"id":1,"subject":"数学","grade":"初一","stage":"初中","type":"选择题","content":"若x=3是方程2x + a = 7的解，则a的值为？","answer":"A","explanation":"将x=3代入方程2x + a = 7，得2*3 + a = 7，解得a = 1。","solution_steps":"1. 理解题意；2. 列出已知条件；3. 选择合适的方法；4. 进行计算；5. 验证答案","common_mistakes":"1. 移项时忘记变号；2. 计算错误；3. 未验证答案","learning_suggestions":"1. 多练习一元一次方程；2. 注意符号变化；3. 养成验证习惯","difficulty":"简单","points":1,"is_active":1,"created_at":"2025-08-29 16:33:04","updated_at":"2025-11-17 17:13:31","sort_order":0,"source":null,"tags":null,"analysis":null,"knowledge_point":null,"difficulty_coefficient":null,"suggested_time":null,"accuracy_rate":null,"usage_count":0,"last_used":null,"view_count":0,"favorite_count":0,"options":[{"id":"A","content":"1","is_correct":1},{"id":"B","content":"-1","is_correct":0},{"id":"C","content":"2","is_correct":0},{"id":"D","content":"3","is_correct":0}]}]